Mingliang Xiong

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35ranked-venue papers
10as first author
30since 2021 · last 2026
0000-0002-5575-5860ORCID · verified

Domains — the database's venue-derived domains; a paper can count in several

Computer networks · 33 · 10 first-author · 28 since 2021Artificial intelligence and machine learning · 2 · 2 since 2021Graphics, computer vision, multimedia, augmented reality and games · 1 · 1 since 2021
YearPublicationVenuePosition
2026 Resonant Beam Multitarget DOA Estimation
abstract
With the increasing demand for internet of things (IoT) applications, especially for location-based services, how to locate passive mobile targets (MTs) with minimal beam adjustment has become a challenge. Resonant beam systems are considered promising IoT technologies with advantages such as beam self-alignment and energy concentration. However, resonant systems are difficult to apply to multi-user scenarios due to co-frequency interference. To establish a resonant system for multi-target localization, this paper designs an innovative resonant system architecture based on frequency division multiple access (FDMA), which enables a base station (BS) to establish connections with multiple mobile targets (MTs) with different carriers, and establishes a multi-channel cyclic model through a retro-directive array (RDA) to achieve one-to-many electromagnetic wave propagation and MTs direction of arrival (DOA) estimation through echo signals. Simulation results show that the proposed system supports resonant establishment between the BS and multiple MTs. This helps the BS maintain high DOA estimation accuracy when faced with multiple passive MTs, ensuring that the DOA error is less than 1° within a range of 5 m and 50° field of view, and the accuracy is higher than that of active beamforming localization systems under the same conditions.
Yixuan Guo, Qingwei Jiang, Mingliang Xiong, Wen Fang 0001, Mingqing Liu 0002, Shuaifan Xia, Qingwen Liu 0001
IEEE Internet Things J.3
2026 A Low LO Frequency Resonant Beam System for Multiuser Self-Aligning SWIPT
abstract
With the explosive growth of the Internet of Things (IoT), simultaneous wireless information and power transfer (SWIPT) has emerged as a core solution for powering low-energy devices. To address the limitations of single-user adaptation and the high cost and power consumption caused by high local oscillator (LO) frequencies of up to 60 GHz, this paper proposes a low LO frequency resonant beam system (LLF-RBS) for multi-user self-aligning SWIPT. Our three-mixer phase conjugation (TMPC) circuit architecture reduces the requirement for key LO frequencies to the 28 and 32 GHz bands, representing an approximate 50% reduction. This architecture enables simultaneous phase conjugation, frequency translation, and information modulation within a low-cost hardware envelope. We theoretically prove that the system’s multi-user beamforming mechanism is physically equivalent to a power iteration algorithm, guaranteeing spontaneous convergence to the channel’s principal eigenmodes without explicit channel state information or digital beamforming control. Simulation results demonstrate that the LLF-RBS achieves adaptive self-alignment and watt-level power transfer for multiple users, attaining a downlink spectral efficiency of up to 21.4 bps/Hz.
Jiangchuan Mu, Yixuan Guo, Mingliang Xiong, Qingwen Liu 0001
IEEE Internet Things J.3
2026 On the Stability of Spatially Distributed Cavity Laser and Boundary of Resonant Beam SLIPT
abstract
Spatially distributed cavity (SDC) lasers are a promising technology for simultaneous light information and power transfer (SLIPT), offering benefits such as increased mobility and intrinsic safety, which are advantageous for various Internet of Things (IoT) devices. However, achieving beam transmission over meter-level long working distances presents significant challenges from cavity stability constraints, manufacturing/ assembly tolerances, and diffraction losses. This paper conducts a theoretical investigation of the fundamental restrictions limiting long-range resonant beam generation. We investigate cavity stability and beam characteristics, and propose a binary-search-based Monte Carlo simulation algorithm as well as a linear approximation algorithm to quantify the maximum acceptable tolerances for stable operation. Numerical results indicate that the stable region contracts sharply as distance increases. For fixed-component systems, an acceptable tolerance of 0.01 mm restricts the achievable transmission distance to less than 2 m. To address this limitation, we also prove the feasibility of long-range beam formation using precision adjustable elements, paving the way for advanced engineering applications. Experimental results verified this assumption, demonstrating that by tuning the stable region during assembly, the transmission distance could be extended to 2.8 m. This work provides essential theoretical insights and practical design guidelines for realizing stable, long-range SDC systems.
Mingliang Xiong, Zeqian Guo, Qingwen Liu 0001, Gang Wang 0014, Gang Li 0020, Bin He 0003
IEEE Internet Things J.1
2026 High-Resolution Multitarget DOA Estimation for Resonant Beam Systems
abstract
Direction of arrival (DOA) estimation technology offers a promising solution to address the sensing and positioning demands of Internet of Things (IoT) devices. Optical resonant beam systems (RBS), owing to their inherent characteristics of self-alignment, self-established energy focusing, and passive target sensing, make them naturally suited for DOA estimation in IoT scenarios. However, RBS suffer from limited angular resolution and a narrow field of view (FoV) in multi-target environments. To overcome these limitations, this paper proposes a high-resolution wide-field-of-view resonant beam DOA estimation system (RB-HWDOA). The RB-HWDOA integrates an optical spectrum-based DOA estimation algorithm (OSB-DOA), which leverages amplitude information in the two-dimensional Fourier spectrum of the resonant beam, overcoming the resolution limit imposed by the beam size in spatial-domain methods. Furthermore, we designed a telescope modulation (TM) structure to correct phase and direction mismatches, enabling a multi-Tx framework that focuses beams onto a common sensing module, thereby extending the effective FoV. Combined with the OSB-DOA algorithm, this design supports high-resolution DOA estimation for multiple targets simultaneously over a wide FoV. Simulation results show that OSB-DOA resolves angular separations down to 0.1◦ across multiple resonant beams, remains robust under noise, and the TM architecture enables multi-Tx integration for wide-FoV coverage, making RB-HWDOA a scalable and efficient solution for passive multi-target DOA estimation in complex IoT environments.
Guangkun Zhang, Mingqing Liu 0002, Wen Fang 0001, Mingliang Xiong, Qingwen Liu 0001
IEEE Internet Things J.4
2026 Self-Aligning Resonant Beam for Simultaneous Wireless Power Transfer and Duplex Communication
abstract
Sustainable energy supply and high-speed communications are two significant needs for the upcoming 6G applications. This paper introduces a self-aligning resonant beam system for simultaneous light information and power transfer (SLIPT), employing a novel coupled spatially distributed resonator (CSDR). The system utilizes a resonant beam for efficient power delivery and a second-harmonic beam for concurrent data transmission, inherently minimizing echo interference and enabling bidirectional communication. Through comprehensive analyses, we investigate the CSDR’s stable region, beam evolution, and power characteristics in relation to working distance and device parameters. Numerical simulations validate the CSDR-SLIPT system’s feasibility by identifying a stable beam waist location for achieving accurate mode-match coupling between two spatially distributed resonant cavities and demonstrating its operational range and efficient power delivery across varying distances. The research reveals the system’s benefits in terms of both safety and energy transmission efficiency. We also demonstrate the trade-off among the reflectivities of the cavity mirrors in the CSDR. Besides, an experiment was conducted to verified the feasibility of self-aligning beam generation and safety under the designed structure. These findings offer valuable design insights for resonant beam systems, advancing SLIPT with significant potential for remote device connectivity.
Mingliang Xiong, Qingwen Liu 0001, Hao Deng 0002, Gang Wang 0014, Jianchen Zhu, Gang Li 0020, Bin He 0003
IEEE J. Sel. Areas Commun.1
2026 Beyond textual rationales: Anatomy-grounded chain-of-thought for traceable radiology reasoning
Jun Yang 0056, Mengyuan Xu, Mingliang Xiong, Wen Fang 0001, Mingqing Liu 0002, Hao Deng 0002, Bin He 0003, Gang Li 0020, Qingwen Liu 0001
Knowl. Based Syst.5
2026 FDMA-Based Passive Multiple Users SWIPT Utilizing Resonant Beams
Yixuan Guo, Mingliang Xiong, Wen Fang 0001, Qingwei Jiang, Qingwen Liu 0001
IEEE Trans. Wirel. Commun.2
2025 Align-A-Video: Deterministic Reward Tuning of Image Diffusion Models for Consistent Video Editing
abstract
Due to control limitations in the denoising process and the lack of training, zero-shot video editing methods often struggle to meet user instructions, resulting in generated videos that are visually unappealing and fail to fully satisfy expectations. To address this problem, we propose Align-A-Video, a video editing pipeline that incorporates human feedback through reward fine-tuning. Our approach consists of two key steps: 1) Deterministic Reward Fine-tuning. To reduce optimization costs for expected noise distributions, we propose a deterministic reward tuning strategy. This method improves tuning stability by increasing sample determinism, allowing the tuning process to be completed in minutes; 2) Feature Propagation Across Frames. We optimize a selected anchor frame and propagate its features to the remaining frames, improving both visual quality and semantic fidelity. This approach avoids temporal consistency degradation from reward optimization. Extensive qualitative and quantitative experiments confirm the effectiveness of using reward fine-tuning in Align-A-Video, significantly improving the overall quality of generated videos.
Yingkang Zhong, Jiangchuan Mu, Mingliang Xiong, Wen Fang 0001, Mingqing Liu 0002, Hao Deng 0001, Bin He 0003, Gang Li 0020, Qingwen Liu 0001
CVPR5
2025 Passive Secure Identity Recognition Based on Resonant Beam
abstract
Resonant beam systems (RBS) have gained attention in optical wireless applications due to their unique self-alignment capability, enabling robust connections in mobile environments. However, RBS lacks physical layer encryption mechanisms, which poses security risks during identity authentication. This paper proposes a passive secure identity recognition (PSIR) system that directly embeds authentication features into the resonant beam’s physical characteristics. The proposed system utilizes a semi-reflective amplitude mask (SAM) to generate semi-reflective dark stripes (SDS) that induce nonlinear changes in the resonant beam modes at the Tx, facilitating secure transmission of identity information without explicit cryptographic protocols. Then, the convolutional neural networks (CNN) are employed for the classification of the resonant beam field, ensuring secure and accurate identity recognition. Simulation results demonstrate a nonlinear relationship between SDS and resonant beam modes, which cannot be distinctly displayed, thereby proving the security of the proposed PSIR system. Additionally, we trained an example model using a three-layer CNN. In a four-class classification task, the area under curve (AUC) value for each category was no less than 0.6, confirming the accuracy of the identity recognition.
Guangkun Zhang, Mingliang Xiong, Wen Fang 0001, Mingqing Liu 0002, Qingwen Liu 0001
GLOBECOM2
2025 Resonant Beam Enabled Passive 3-D Positioning
abstract
With the rapid development of the internet of things (IoT), location-based services are becoming increasingly prominent in various aspects of social life, and accurate location information is crucial. However, RF-based indoor positioning solutions are severely limited in positioning accuracy due to signal transmission losses and directional difficulties, and optical indoor positioning methods require high propagation conditions. To achieve higher accuracy in indoor positioning, we utilize the principle of resonance to design a triangulation-based resonant beam positioning system (TRBPS) in the RF band. The proposed system employs phase-conjugation antenna arrays and resonance mechanism to achieve energy concentration and beam self-alignment, without requiring active signals from the target for positioning and complex beam control algorithms. Numerical evaluations indicate that TRBPS can achieve millimeter-level accuracy within a range of 3.6m without the need for additional embedded systems.
Yixuan Guo, Mingliang Xiong, Wen Fang 0001, Qingwei Jiang, Mengyuan Xu, Qingwen Liu 0001
IEEE Internet Things J.2
2025 Single-Frequency Self-Alignment RF Resonant Beam for Information and Power Transfer
abstract
Due to power attenuation, improving transmission efficiency in the radio-frequency (RF) band remains a significant challenge, which hinders advancements in various fields of the Internet of Things (IoT), such as wireless power transfer (WPT) and wireless communication. Array design and retro-directive beamforming (RD-BF) techniques offer simple and effective ways to enhance transmission efficiency. However, when the target is an array or in the near field, the RD-BF system (RD-BFS) cannot radiate more energy to the target due to phase irregularities in the target region, resulting in challenges in achieving higher efficiency. To address this issue, we propose the RF-based resonant beam system (RF-RBS), which adaptively optimizes phase and power distribution between transmitting and receiving arrays by leveraging the resonance mechanism to achieve higher transmission efficiency. We analyze the system structure and develop an analytical model to evaluate power flow and resonance establishment. Numerical analysis demonstrates that the proposed RF-RBS achieves self-alignment without beam control and provides higher transmission efficiency compared to RD-BFS, with improvements of up to 16%. This self-alignment capability allows the system to effectively transfer power and information across varying distances and offsets. The numerical results indicate the capability to transmit watt-level power and achieve 21 bps/Hz of downlink spectral efficiency in indoor settings, highlighting the advantages of RF-RBS in information and power transfer for mobile applications.
Qingwei Jiang, Mingqing Liu 0002, Mengyuan Xu, Wen Fang 0001, Mingliang Xiong, Qingwen Liu 0001, Shengli Zhou 0001
IEEE Internet Things J.5
2025 Mobile Self-Protection Resonant Beam SWIPT With Adaptive Phase Control
abstract
The Simultaneous Wireless Information and Power Transfer (SWIPT) technique heralds a new era for future Internet of Things (IoT) devices. Resonant Beam System (RBS) is emerging as a possible future for achieving long-range, high-power, and high-capacity SWIPT. However, ensuring human safety at higher power levels presents an unresolved issue. A novel approach to enhance safety utilizes self-mixing interference to minimize radiation exposure for invading objects. However, this design restricts the system to a predetermined position. Thus, the application of the system in mobile scenarios is still challenging. In this paper, we proposed an enhanced self-protection RBS with self-adaptive phase adjustment to support the mobility of the system. A phase adjuster is composed into the system which utilizes the linear Electro-optic effect (i.e. Pockels effect) to correct phase discrepancies. An Optical Phase-Locked Loop (OPLL) achieves self-adaptive functionality using its feedback loop. Based on the analytical model established in this paper, the proposed system does not compromise the safety of the original self-protection RBS but offers mobility. The SWIPT performance evaluations indicate a stable system output, with a spectral efficiency of approximately 13.77 bps/Hz and an electrical power output of 4.63 W over a distance of 6 m within a 5∘ field of view.
Shuaifan Xia, Wen Fang 0001, Mingqing Liu 0002, Mingliang Xiong, Qingwen Liu 0001
IEEE Internet Things J.5
2025 Resonant Beam Enabled Multi-Target Localization
abstract
In the era of the Internet of everything (IoE) and the metaverse, there is a growing demand for high-accuracy indoor positioning for applications such as autonomous robots, virtual reality, and smartphones. This paper proposed a resonant beam phase-based passive localization (RBPPL) system optimized for high-precision indoor positioning in multi-access scenarios. By leveraging the self-alignment characteristic and integrating the analysis of resonant beam phase, angle of arrival (AoA) matching and binocular disparity method for 3D point coordinate acquisition, the RBPPL system achieves binocular passive multi-access 3D positioning with an error within 4 cm at a distance of 8 m. We present a novel multi-access AoA estimation method that overcomes the challenges of spot overlap in traditional CMOS-based angle analysis. We propose a telescope system to correct the phase and focus the propagation direction of optical resonant beam systems. Simulations demonstrate the system’s robustness and high accuracy. The proposed RBPPL system, optimized for multi-access scenarios, offers a promising solution for high-accuracy indoor positioning, supporting various IoE and metaverse applications. Future work will focus on real-world deployment and its potential in complex multi-access scenarios.
Guangkun Zhang, Mengyuan Xu, Wen Fang 0001, Mingliang Xiong, Mingqing Liu 0002, Gang Li 0020, Bin He 0003, Qingwen Liu 0001
IEEE Trans. Wirel. Commun.5
2024 Enhanced Field of View for Resonant Beam Systems in IoT Applications
abstract
Simultaneous lightwave information and power transfer (SLIPT) is increasingly vital in the burgeoning field of mobile Internet of Things (IoT) technologies. It offers a dual advantage: high-power wireless charging and high-rate data communication, essential for IoT devices. Resonant beam system, utilizing spatially separated laser resonators (SSLR), presents a promising solution. These systems enable the creation of resonant beams without necessitating beam steering devices or alignment/tracking processes, even when the receiver’s location changes. However, a critical challenge in deploying these systems within IoT scenario lies in their limited field of view (FoV) and coverage angle. In this paper, we present a design strategy for integrating concave mirrors with lenses in a cat’s-eye retroreflector configuration. This adjustment significantly enhances the FoV of the resonant beam SLIPT system, resulting in more efficient and broader system coverage. Through an analysis grounded in optical field propagation, we evaluate the FoV performance of the resonant beam SLIPT system. The numerical results show that with a retro-reflector dimension of 2.5 mm, our proposed system demonstrates the capability of conducting watt-level electrical power transfer, coupled with a communication capacity of approximately 10-bit/s/Hz under a 6.87° FoV. This substantial improvement in FoV not only addresses the current limitations but also provides new avenues for resonant beam SLIPT systems in a wide range of IoT applications.
Shun Han, Mingliang Xiong, Wen Fang 0001, Mingqing Liu 0002, Mengyuan Xu, Shuaifan Xia, Qingwen Liu 0001
IEEE Internet Things J.2
2024 Millimeter-Wave Resonant Beam SWIPT
abstract
The rapid expansion of the Internet of Things (IoT) necessitates robust solutions for charging and communicating with a multitude of devices, making simultaneous wireless information and power transfer (SWIPT) technology increasingly vital. However, existing methods can hardly provide high charging power, great channel capacity, and flexible mobility at the same time. This manuscript introduces a millimeter-wave resonant beam system for SWIPT (mmRB-SWIPT), leveraging retro-directive antenna arrays to enable automatic beam alignment and enhanced transmission efficiency without additional controls. A dual-frequency design allows the system to operate in a frequency-division duplex mode, thereby resolving the echo interference issues encountered in prior resonant beam systems. Analytical models are developed to evaluate the system’s viability and performance, with numerical analysis indicating the capability to transmit watt-level power and achieve 4.8 bps/Hz of spectral efficiency in indoor settings.
Shuaifan Xia, Qingwei Jiang, Wen Fang 0001, Qingwen Liu 0001, Shengli Zhou 0001, Mingqing Liu 0002, Mingliang Xiong
IEEE Internet Things J.7
2024 Auto-Protection for Resonant Beam SWIPT in Portable Applications
abstract
Simultaneous wireless information and power transfer (SWIPT) is regarded as the enabling technology for IoT, 5G and beyond, or even 6G. Resonant beam system (RBS) is a promising candidate to provide high-power, long-range, and intrinsically safe SWIPT. Yet ensuring human safety under high-power application scenarios is still challenging. In this paper, we propose a portable auto-protection (AP) scheme to enhance the safety of RBS. Leveraging self-mixing interference, the high-power resonant beam is automatically cut off as the low-power protective beam is obstructed by foreign objects, resulting in less radiation exposure to invading objects. The paper proposes a phase compensation scheme that resolves the contradiction between portability and interference-induced mode variation, allowing the receiver to be placed anywhere within the field of view. Moreover, by approximating the cavity to Fabry-Pérot interferometer, analytical models are established to reveal the safety-enhancement mechanism and evaluate the system performance. Numerical results demonstrate that the AP scheme will not significantly compromise the portability and SWIPT performance of RBS, as the average spectral efficiency and electric power are 13.55bps/Hz and 5.42W respectively, within 6m transmission distance.
Shuaifan Xia, Qingwen Liu 0001, Mingqing Liu 0002, Wen Fang 0001, Mingliang Xiong, Xiaozhe Li
IEEE Internet Things J.5
2024 Individual-Source Resonant-Beam-Enabled 3-D Positioning for IoT Scenarios
abstract
In the rapidly evolving field of the Internet of Things (IoT), simplifying infrastructure and deployment is highly competitive. This study introduces a novel approach using an individual-source resonant beam (RB) for passive 3-D positioning in IoT scenarios, excelling in efficient system design and signal utilization. The proposed solution simultaneously exploits the frequency structure and spatial distribution of RB to estimate position parameters, facilitating a compact design for both the base station (BS) and the mobile target (MT). The BS incorporates an individual-source RB transmitter, while the MT is equipped with a passive (electricity-free) reflector. Specifically, for extracting the distance information from RB, we develop theoretical models to illustrate the frequency attributes and associated structural variations of RB due to MT’s movement. Regarding angle estimation, we deduce the relationship between the RB field distribution and incident angles. We also conduct simulations to validate the entire positioning process. The results indicate the positioning accuracy can reach approximately 2 cm over a distance from 1.7 to 2.5 m. This technique sets a new benchmark for precise and efficient 3-D positioning, making it suitable for various IoT scenarios, such as smart homes, industrial automation, and asset tracking.
Mengyuan Xu, Qingwei Jiang, Mingqing Liu 0002, Shuaifan Xia, Mingliang Xiong, Qingwen Liu 0001
IEEE Internet Things J.6
2024 NLOS Transmission Analysis for Mobile SLIPT Using Resonant Beam
abstract
Simultaneous lightwave information and power transfer (SLIPT) is a potential way to meet the demands of sustainable power supply and high-rate data transfer in next-generation networks. Although resonant beam-based SLIPT (RB-SLIPT) can realize high-power energy transfer, high-rate data transfer, human safety, and self-alignment simultaneously, mobile transmission channel (MTC) analysis under non-line-of-sight (NLOS) propagation has not been investigated. In this paper, we propose analytical models and simulation tools for reflector-assisted NLOS transmission of RB-SLIPT, where transmission loss and accurate beam field profile of NLOS MTC can be obtained with a receiver at arbitrary positions and attitude angles. We establish analytical models relying on full diffraction theory for beam propagation between tilted or off-axis planes. Then, we provide three numerical methods (i.e., NUFFT-based, cubic interpolation-based, and linear interpolation-based methods) in simulations. Moreover, to deal with the contradiction between limited computing memory and high sampling requirements for long-range transmission analysis, we propose a multi-hop sliding window approach, which can reduce the sampling number by a factor of thousands. Finally, numerical results demonstrate that RB-SLIPT can achieve 3W charging power and 10bit/s/Hz data rate over a 2m distance in NLOS scenarios.
Mingqing Liu 0002, Shuaifan Xia, Mingliang Xiong, Mengyuan Xu, Qingwen Liu 0001, Hao Deng 0002
IEEE Trans. Wirel. Commun.3
2024 Resonant Beam Information and Power Transfer: Multiple Access Modeling and Delay Analysis
abstract
To meet the growing demand for joint data and energy transmission, research on wireless information and power transfer is being promoted. The resonant beam enabled information and power transfer (RBIPT), which supports long-distance, high-power, and wide-bandwidth information and power transfer, has sparked widespread interest. The point-to-multipoint RBIPT system shows great promise for enabling simultaneous RBIPT for multiple receivers. However, the enabling system architecture has not been well studied in the literature, which is holding back the system implementation. To solve this problem, we propose a time division multiplexing RBIPT (TDM-RBIPT) system for multiple access, and constract a novel metric to evaluate the information and power transfer performance. We explore the TDM-RBIPT mechanism and design the architectures of the transmitter and the receiver. For the information transfer performance evaluation, we take system latency and throughput into consideration. We propose to estimate the system delay with the martingale theory by modeling the dynamic data processing procedures as Markovian processes with the markov chain monte carlo (MCMC) method. To evaluate the power transmission performance, we consider the transmitter’s power costs and the receivers’ power benefits. Numerical results reveal the effectiveness of the proposed TDM-RBIPT system and validate the accuracy of the proposed metric.
Mingliang Xiong, Di Zhou 0012, Yan Dong 0001, Qingwen Liu 0001, Weidang Lu, Zhu Han 0001
IEEE Trans. Wirel. Commun.2
2023 Simultaneous Localization and Power Transfer via Resonant Beam
abstract
Both high-accuracy localization and power supply for mobile and Internet of Things (IoT) devices are demanding in the next-generation wireless networks. Recently, research on complete localization has been proposed, i.e., capturing the target’s location and identification (ID). However, the existing schemes face challenges, including: 1) improving positioning accuracy without the active emission of signals from the targets and 2) providing sufficient power for the targets to enable features such as ID. In this article, we present a simultaneous localization and power transfer (SLAPT) system relying on the resonant beam system (RBS), which can realize complete, passive, and high-accuracy positioning along with the capability of sufficient power supply. We first establish analytical models to illustrate the principles of power transfer to the target with an open-cavity laser, positioning the target, including Time-of-Flight (ToF) ranging and Angle-of-Arrival (AoA) estimation with the self-reproducing mode theory, wireless charging power conversion, and identifying the target using shutter modulation. Numerical results demonstrate that the proposed SLAPT system can achieve less than 1-cm positioning accuracy over 2-m distance in 16° Fields of View (FoVs) with 3-W wireless power supply. The proposed system allows passive and complete localization for the target without battery or power line in various IoT applications.
Mingqing Liu 0002, Qingwei Jiang, Qingwen Liu 0001, Mengyuan Xu, Mingliang Xiong, Wen Fang 0001
IEEE Internet Things J.5
2023 Resonant Beam SWIPT With Telescope and Second Harmonic
abstract
Simultaneous wireless information and power transfer (SWIPT) is a prospective technology that can handle the energy consumption and communication requirements in the Internet of Things. Resonant beam SWIPT (RB-SWIPT) scheme utilizes narrow optical beam as carrier and with spatially separated resonator structure, which can support high power and high rate SWIPT for mobile devices. However, the performance of original RB-SWIPT systems is limited by returning beam interference and transmission loss. In this paper, we propose a RB-SWIPT scheme for transmission-enhanced and anti-interference. The telescope internal modulator (TIM) and second harmonic generator (SHG) are adopted in the proposed system. The TIM can compress beams to reduce the transmission loss. The SHG can generate frequency-doubled beams to avoid interference. To evaluate the proposed system, we establish mathematical models to depict the beam transmission, energy conversion, electric power output and data receiving. Numerical results illustrate that the proposed system can achieve 18 bit/s/Hz spectral efficiency and deliver 8 W power over 100 m distance.
Qingwen Liu 0001, Liuqing Yang 0001, Georgios B. Giannakis, Wen Fang 0001, Mingliang Xiong
IEEE Trans. Wirel. Commun.6
2022 Charging a Smartphone Over the Air: The Resonant Beam Charging Method
abstract
Wireless charging for mobile Internet of Things (IoT) devices such as smartphones is extremely difficult. To reduce energy dissipation during wireless transmission in mobile scenarios, laser or narrow radio beams with sophisticated tracking control are typically required. However, reaching the necessary tracking accuracy and reliability is really difficult. In this article, inspired by the features of optical resonators and retroreflectors, we develop an experiment on a self-aligned resonant beam charging system for long-distance mobile power transfer. It exploits light resonances inside a double-retroreflector-based spatially separated laser resonator (SSLR), which eliminates the requirement for any kind of tracking control. Focal telecentric cat’s eye retroreflectors are employed here. The SSLR was investigated by both theoretical calculation and experiment. We also well assembled the transmitter and the receiver and demonstrated its application in mobile smartphone charging. The results show that above 5-W optical power (also obtained more than 0.6-W electrical power) transferring with negligible diffraction loss to a few-centimeter-size receiver is realized while the receiver moves arbitrarily within 2-m vertical distance and 6° field of view from the transmitter. The maximum horizontal moving range is up to ±18 cm. This wireless charging system empowers a smartphone in mobile operation with unlimited battery life without the need for a cable.
Qingwen Liu 0001, Mingliang Xiong, Mingqing Liu 0002, Qingwei Jiang, Wen Fang 0001
IEEE Internet Things J.2
2022 Transient Analysis for Resonant Beam Charging and Communication
abstract
High communication speed and sufficient energy supply are the directions of technological development. Energy and information available anywhere and anytime have always been people’s good wishes. On this basis, the resonant beam system (RBS) has demonstrated its unique superiority in meeting the needs for energy and communication. The previous work has mostly focused on the analysis of charging performance of RBS and its steady-state characteristics. In order to analyze the communication performance of RBS more thoroughly, we propose a resonant beam charging and communication (RBCC) system and use the equivalent circuit analysis method to conduct transient analysis on it. The equivalent circuit reveals the dynamic establishment process of the resonant beam from scratch, which facilitates the analysis of the relaxation oscillation process and a deeper understanding of the energy transmission and communication performance. In addition, we explore the energy transmission and communication performance of the RBCC under different energy allocation strategies.
Mingliang Xiong, Mingqing Liu 0002, Qingwen Liu 0001, Shengli Zhou 0001
IEEE Internet Things J.2
2022 Performance of a High Power and Capacity Mobile SLIPT Scheme
abstract
The increasing demands of power supply and data rate for mobile devices promote the research of simultaneous wireless information and power transfer (SWIPT). Optical SWIPT, as known as simultaneous light information and power transfer (SLIPT), has the potential for providing high-capacity communication and high-power wireless charging. However, SLIPT technologies based on light-emitting diodes have low efficiency due to energy dissipation over the air. Laser-based SLIPT technologies need strict positioning accuracy and scanning resolution, which may lead to the increase of costs and complexity. In this paper, we propose a mobile SLIPT scheme based on spatially separated laser resonator (SSLR) and intra-cavity second harmonic generation. The power and data are transferred via separated frequencies, while they share the same self-aligned resonant beam path, without the needs of receiver positioning and beam steering. We establish the analysis model of the resonant beam power and its second harmonic power. Numerical results show that the proposed system can achieve watt-level battery charging power and above 10-bit/s/Hz achievable rate at 6-m distance, which satisfies the requirements of most indoor mobile devices.
Mingliang Xiong, Qingwen Liu 0001, Shengli Zhou 0001, Shun Han, Mingqing Liu 0002
IEEE Trans. Commun.1
2022 Integrated Communication and Positioning With Resonant Beam
abstract
The demands for integrated communication and positioning (ICP) have been put forward in Internet of Things. However, the existing ICP systems either face challenges in trade-off between data rates and positioning accuracy or have difficulties in guaranteeing human safety while maintaining excellent performance. In this paper, we propose a monocular resonant beam-based ICP (RB-ICP) design for simultaneously realizing high-rate data transfer and high-accuracy localization while keeping the features as intrinsic safety. Utilizing the high-efficiency transmission channel of resonant beam system and the frequency-doubled beam design, we introduce the communication model without the echo interference issue. Then, we propose a distance estimation model using the phase-shift method with frequency-quadrupled beam design. Next, the angle of arrival estimation can be conducted relying on the energy-concentrated and self-alignment features of resonant beam. The simulation methods including centroid algorithm and signal conversion simulation in a photosensor along with the noise analysis are presented. In numerical analysis, we demonstrate that the positioning error can be less than 1cm and the achievable spectral efficiency can reach 16bit/s/Hz over 2m distance in 15° field of view (FoV). This proposed system enables simultaneous high-rate data transfer and high-accuracy receiver positioning for the applications such as augmented reality/virtual reality (AR/VR).
Mingqing Liu 0002, Shuaifan Xia, Mingliang Xiong, Mengyuan Xu, Wen Fang 0001, Qingwen Liu 0001
IEEE Trans. Wirel. Commun.3
2022 Mobile Optical Communications Using Second Harmonic of Intra-Cavity Laser
abstract
Optical wireless communication (OWC) meets the demands of the future six-generation mobile network (6G) as it operates at several hundreds of Terahertz and has the potential to enable data rate in the order of Tbps. However, most beam-steering OWC technologies require high-accuracy positioning and high-speed control. Resonant beam communication (RBCom), as one kind of non-positioning OWC technologies, has been proposed for high-rate mobile communications. The mobility of RBCom relies on its self-alignment characteristic where no positioning is required. In a previous study, an external-cavity second-harmonic-generation (SHG) RBCom system has been proposed for eliminating the echo interference inside the resonator. However, its energy conversion efficiency and complexity are of concern. In this paper, we propose an intra-cavity SHG RBCom system to simplify the system design and improve the energy conversion efficiency. We elaborate the system structure and establish an analytical model. Numerical results show that the energy consumption of the proposed intra-cavity design is reduced to reach the same level of channel capacity at the receiver compared with the external-cavity one.
Mingliang Xiong, Qingwen Liu 0001, Xin Wang 0003, Shengli Zhou 0001, Zhiyong Bu 0001
IEEE Trans. Wirel. Commun.1
2022 Optimization of a Mobile Optical SWIPT System With Asymmetric Spatially Separated Laser Resonator
abstract
High-power and high-rate simultaneous wireless information and power transfer (SWIPT) becomes more and more important with the development of Internet of Things technologies. Optical SWIPT, also known as simultaneous light information and power transfer (SLIPT), has unique advantages such as abundant spectrum resources and low propagation divergence, compared with radio-frequency (RF) SWIPT. However, optical SWIPT faces many challenges in beam steering and receiver positioning/tracking. Resonant beams generated by spatially separated laser resonators (SSLR) have many advantages, including high power, self-aligned mobility, and intrinsic safety. It has been proposed as the carrier of wireless charging and communication. Using resonant beams, mobile electronic devices can be remotely charged and supported with high-rate data transfer. In this paper, we propose a mobile optical SWIPT system based on asymmetric SSLR and present the system optimization procedure. We also determine the boundary of the charging power and communication rate, and discuss the trade-off between power transfer and information transfer. Numerical results show that both the charging power and the communication rate of the optimized asymmetric system are much higher than those of the symmetric system in the previous work.
Mingliang Xiong, Qingwen Liu 0001, Shengli Zhou 0001
IEEE Trans. Wirel. Commun.1
2021 Resonant Beam Communications With Echo Interference Elimination
abstract
Resonant beam communications (RBCom) is capable of providing wide bandwidth when using light as the carrier. Besides, the RBCom system possesses the characteristics of mobility, high signal-to-noise ratio (SNR), and multiplexing. Nevertheless, the channel of the RBCom system is distinct from other light communication technologies due to the echo interference issue. In this article, we reveal the mechanism of the echo interference and propose the method to eliminate the interference. Moreover, we present an exemplary design based on frequency shifting and optical filtering, along with its mathematic model and performance analysis. The numerical evaluation shows that the channel capacity is greater than 15 b/s/Hz.
Mingliang Xiong, Qingwen Liu 0001, Gang Wang 0014, Georgios B. Giannakis, Sihai Zhang, Jinkang Zhu, Chuan Huang 0001
IEEE Internet Things J.1
2021 Mobility-Enhanced Simultaneous Lightwave Information and Power Transfer
abstract
Simultaneous lightwave information and power transfer (SLIPT) has been regarded as a promising technology to deal with the ever-growing energy consumption and data-rate demands in the Internet of Things. We propose a resonant beam based SLIPT (RB-SLIPT) system, which deals with the conflict of high deliverable power and mobile receiver positioning with the existing SLIPT schemes. At first, we establish a mobile transmission channel model and depict the energy distribution in the channel. Then, we present a practical design and evaluate the energy/data transfer performance within the moving range of the RB-SLIPT. Numerical evaluation demonstrates that the RB-SLIPT can deliver more than 4W charging power and enable 3Gb/s achievable data rate with the moving range of 20° field of view (FOV) over 3m distance. Thus, RB-SLIPT can enable simultaneous high deliverable power and high data rate in mobile scenarios without tracking control.
Mingqing Liu 0002, Mingliang Xiong, Qingwen Liu 0001, Shengli Zhou 0001, Hao Deng 0002
IEEE Trans. Wirel. Commun.2
2021 Retro-Reflective Beam Communications With Spatially Separated Laser Resonator
abstract
Optical wireless communications (OWC) utilizing infrared or visible light as the carrier attracts great attention in 6G research. Resonant beam communications (RBCom) is an OWC technology which simultaneously satisfies the needs of non-mechanical mobility and high signal-to-noise ratio (SNR). It has the self-alignment feature and therefore avoids positioning and pointing operations. However, RBCom undergoes echo interference. Here we propose an echo-interference-free RBCom system design based on second harmonic generation. The transmitter and the receiver constitute a spatially separated laser resonator, in which the retro-reflective resonant beam is formed and tracks the receiver automatically. This structure provides the channel with adaptive capability in beamforming and alignment, which is similar to the concept of intelligent reflecting surface (IRS) enhanced communications, but without hardware and software controllers. Besides, we establish an analytical model to evaluate the beam radius, the beam power, and the channel capacity. The results show that our system achieves longer distance and smaller beam diameter for the transmission beyond 10 Gbit/s, compared with the existing OWC technologies.
Mingliang Xiong, Mingqing Liu 0002, Qingwei Jiang, Qingwen Liu 0001, Hao Deng 0002
IEEE Trans. Wirel. Commun.1
2020 Wireless Power Transmitter Deployment for Balancing Fairness and Charging Service Quality
abstract
Wireless energy transfer (WET) has recently emerged as an appealing solution for power supplying mobile/Internet of Things (IoT) devices. As an enabling WET technology, resonant beam charging (RBC) is well documented for its long-range, high-power, and safe “WiFi-like” mobile power supply. To provide high-quality wireless charging services for multiple users in a given region, we formulate a deployment problem of multiple RBC transmitters for balancing the charging fairness and quality of charging service. Based on the RBC transmitter's coverage model and receiver's charging/discharging model, a genetic algorithm (GA)-based scheme and a particle swarm optimization (PSO)-based scheme are put forth to resolve the above issue. Moreover, we present a scheduling method to evaluate the performance of the proposed algorithms. The numerical results corroborate that the optimized deployment schemes outperform uniform and random deployment in 10%-20% charging efficiency improvement.
Mingqing Liu 0002, Gang Wang 0014, Georgios B. Giannakis, Mingliang Xiong, Qingwen Liu 0001, Hao Deng 0002
IEEE Internet Things J.4
2020 Resonant Beam Communications With Photovoltaic Receiver for Optical Data and Power Transfer
abstract
The vision and requirements of the sixth generation (6G) mobile communication systems are expected to adopt freespace optical communication (FSO) and wireless power transfer (WPT). The laser-based WPT or wireless information transfer (WIT) usually faces the challenges of mobility and safety. We present a mobile and safe resonant beam communication (RBCom) system, which can realize high-rate simultaneous wireless information and power transfer (SWIPT). We propose an analytical model to depict its carrier beam and information transfer procedures. The numerical results show that RBCom can achieve more than 40 mW charging power and 1.6 Gbit/s channel capacity with orthogonal frequency division multiplexing (OFDM) scheme, which can be applied in future scenario where power and high-rate data are simultaneously desired.
Mingliang Xiong, Qingwen Liu 0001, Mingqing Liu 0002, Xin Wang 0003, Hao Deng 0002
IEEE Trans. Commun.1
2019 Resonant Beam Communications
abstract
The vision and requirements of the sixth generation (6G) mobile communication systems are expected to adopt free-space optical communication (FSO) and wireless power transfer (WPT). The laser-based WPT or wireless information transfer (WIT) usually faces the challenges of mobility and safety. We present here a mobile and safe resonant beam communication (RBCom) system, which can realize high-rate simultaneous wireless information and power transfer (SWIPT). We propose the analytical model to depict its SWIPT procedure. The numerical results show that RBCom can achieve 9 Gbit/s with 200 mW received optical power, which seems to connect the transmitter and the receiver with a mobile “wireless optical fiber”.
Mingliang Xiong, Qingwen Liu 0001, Mingqing Liu 0002
ICC1
2019 TDMA in Adaptive Resonant Beam Charging for IoT Devices
abstract
Resonant beam charging (RBC) can realize wireless power transfer (WPT) from a transmitter to multiple Internet of Things devices via resonant beams. The adaptive RBC (ARBC) can effectively improve its energy utilization. In order to support multiuser WPT in the ARBC system, we propose the time-division multiple access (TDMA) method and design the TDMA-based WPT scheduling algorithm. Our TDMA WPT method has the features of concurrently charging, continuous charging current, individual user power control, constant driving power, and flexible driving power control. The simulation shows that the TDMA scheduling algorithm has high efficiency, as the total charging time is roughly half (46.9% when charging 50 receivers) of that of the alternative scheduling algorithm. Furthermore, the TDMA for WPT inspires the ideas of enhancing the ARBC system, such as flow control and quality of service.
Mingliang Xiong, Mingqing Liu 0002, Qingwen Liu 0001, Jun Wu 0006
IEEE Internet Things J.1
2019 Adaptive Resonant Beam Charging for Intelligent Wireless Power Transfer
abstract
As a long-range high-power wireless power transfer (WPT) technology, resonant beam charging (RBC) can transmit watt-level power over long distance for the devices in the Internet of Things (IoT). Due to its open-loop architecture, RBC faces the challenge of providing dynamic current and voltage to optimize battery charging performance. In RBC, battery overcharge may cause energy waste, thermal effects, and even safety issues. On the other hand, battery undercharge may lead to charging time extension and significant battery capacity reduction. In this paper, we present an adaptive RBC (ARBC) system for battery charging optimization. Based on RBC, ARBC uses a feedback system to control the supplied power dynamically according to the battery preferred charging values. Moreover, in order to transform the received current and voltage to match the battery preferred charging values, ARBC adopts a dc-dc conversion circuit. Relying on the analytical models for RBC power transmission, we obtain the end-to-end power transfer relationship in the approximate linear closed-form of ARBC. Thus, the battery preferred charging power at the receiver can be mapped to the supplied power at the transmitter for feedback control. Numerical evaluation demonstrates that ARBC can save 61% battery charging energy and 53%-60% supplied energy compared with RBC. Furthermore, ARBC has high energy-saving gain over RBC when the WPT is unefficient. ARBC in WPT is similar to link adaption in wireless communications. Both of them play the important roles in their respective areas.
Wen Fang 0001, Mingliang Xiong, Qingwen Liu 0001, Jun Wu 0006
IEEE Internet Things J.3