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Gabriel Chong
dblp:255/0540
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3ranked-venue papers
0as first author
3since 2021 · last 2023
0000-0001-9985-2067ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Systems, architecture and hardware · 3 · 3 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2023 | A Fully Integrated CMOS Tri-Band Ambient RF Energy Harvesting System for IoT DevicesabstractThis article presents a fully integrated tri-band RF energy harvesting system (RFEH) in 65-nm CMOS technology. The system is designed to harvest ambient RF energies at 900 MHz, 1.9 GHz, and 2.4 GHz through a tri-band impedance matching network (IMN), cross-coupled differential-drive (CCDD) rectifier, and an output voltage monitoring circuit to limit the rectified output voltage to 3.3 V. The system achieves a power conversion efficiency (PCE) of over 30 % across all three frequency bands with a peak of 42.8 %. Furthermore, the system exhibits a peak sensitivity of -20 dBm at an output DC voltage of 1$V$output. Jack Kee Yong, Wen Xun Lian, Harikrishnan Ramiah, Kishore Kumar Pakkirisami Churchill, Gabriel Chong, Nai Shyan Lai, Yong Chen 0005, Pui-In Mak, Rui Paulo Martins |
IEEE Trans. Circuits Syst. I Regul. Pap. | 5 |
| 2023 | A Reconfigurable CMOS Stack Rectifier With 22.8-dB Dynamic Range Achieving 47.91% Peak PCE for IoT/WSN ApplicationabstractThis brief proposes a 900-MHz novel CMOS-reconfigurable stack rectifier (RSR) implemented in a three-stage cross-coupled differential rectifier (CCDR) for battery-assist Internet-of-Things (IoT)/wireless sensor network (WSN) applications. A three-mode RSR is incorporated for an extended dynamic range (DR) input power level with a 100-$\text{k}\Omega $load, fabricated in the 130-nm CMOS. The realized RSR achieves a wide DR power conversion efficiency (PCE) by reducing the ON-resistance (${R} _{\mathrm{\scriptscriptstyle ON}}$) in the low-power zone (LPZ) achieved by reducing the threshold voltage (${V} _{\text {th}}$) of the device and alternately increasing${V} _{\text {th}}$in the high-power zone (HPZ) by implementing the proposed reconfigurable stack transistor technique along with the multithreshold voltage (MTV) technique. The circuit observes a measured result of 47.91% in peak PCE at an input power of −14 dBm by driving a 100-$\text{k}\Omega $load. The proposed circuit also achieved 22.8 and 16.3 dB of DR with a PCE over 20% and 30%, respectively. Compared to other state-of-the-art designs, our work exhibits better DR and PCE. Kishore Kumar Pakkirisami Churchill, Harikrishnan Ramiah, Alexander Choo Chia Chun, Gabriel Chong, Yong Chen 0005, Pui-In Mak, Rui Paulo Martins |
IEEE Trans. Very Large Scale Integr. Syst. | 4 |
| 2022 | A -20-dBm Sensitivity RF Energy-Harvesting Rectifier Front End Using a Transformer IMNabstractThis article describes a fully integrated CMOS radio frequency energy-harvesting (RFEH) front end. It features an on-chip stacked step-up transformer integrated with a cross-coupled differential drive (CCDD) rectifier to enhance the input sensitivity. The transformer also serves as an on-chip balun for the CCDD rectifier. The CCDD rectifier innovates a gate-biasing technique and realizes coupling capacitors at the end of each stage to increase the subsequent stage biasing. Here, our RFEH front end operating at 900 MHz achieves an improved sensitivity of −20 and −19.2 dBm at the 1-V output for no-load and a 1-$\text{M}\Omega $load, respectively. Wen Xun Lian, Harikrishnan Ramiah, Gabriel Chong, Kishore Kumar Pakkirisami Churchill, Nai Shyan Lai, Yong Chen 0005, Pui-In Mak, Rui Paulo Martins |
IEEE Trans. Very Large Scale Integr. Syst. | 3 |