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Ozlem Sardan

dblp:02/7737 · also Ozlem Sardan Sukas · DBLP profile ↗
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4ranked-venue papers
0as first author
0since 2021 · last 2013
—ORCID · none

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

Artificial intelligence and machine learning · 4Systems, architecture and hardware · 4

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Artificial intelligence
3 papers
Robot manipulation · 80% Motion planning and robot control · 20%

Topics — the 6 heaviest of 6, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Robotics › Robot manipulation › micro/nano manipulation
nanorobotic manipulation
0.222010
Novel four-point-probe design and nanorobotic dual endeffector strategy for electrical characterization of as-grown SWCNT bundles · ICRA 2010
NanoLab: A nanorobotic system for automated pick-and-place handling and characterization of CNTs · ICRA 2009
Robotics › Robot manipulation › micromanipulation
magnetic microrobot control
0.212013
Microassembly using a cluster of paramagnetic microparticles · ICRA 2013
Robotics › Robot manipulation › micromanipulation
microassembly
0.212013
Microassembly using a cluster of paramagnetic microparticles · ICRA 2013
Robotics › Motion planning and robot control
robot control
0.212013
Microassembly using a cluster of paramagnetic microparticles · ICRA 2013
Robotics › Robot manipulation › grasping
pick-and-place
0.112009
NanoLab: A nanorobotic system for automated pick-and-place handling and characterization of CNTs · ICRA 2009
Robotics › Robot manipulation › micromanipulation
microgripper
0.012009
NanoLab: A nanorobotic system for automated pick-and-place handling and characterization of CNTs · ICRA 2009

Methods — techniques the papers use, named apart from their topics

magnetic field control · 0.2drag force compensation · 0.2four-point-probe · 0.1chemical vapor deposition · 0.1scanning electron microscopy · 0.1mobile microrobots · 0.1
YearPublicationVenuePosition
2013 Microassembly using a cluster of paramagnetic microparticles
abstract
We use a cluster of paramagnetic microparticles to carry out a wireless two-dimensional microassembly operation. A magnetic-based manipulation system is used to control the motion of the cluster under the influence of the applied magnetic fields. Wireless motion control of the cluster is implemented at an average velocity and maximum position tracking error of 144 μm/s and 50 μm, respectively. This control is used to achieve point-to-point positioning of the cluster, manipulation of microobjects, and assembly of microobjects into a microstructure. The control system achieves stable positioning of the cluster, while simultaneously compensating for the planar drag forces on the cluster and the microobject. The presented magnetic-based microassembly technique allows for the selective pushing and pulling of microobjects with specific geometries towards their destinations inside a microstructure in an execution time of 18 s, within a workspace of 1.8 mm × 2.4 mm.
Islam S. M. Khalil, Frank van den Brink, Ozlem Sardan, Sarthak Misra
ICRA3
2013 Control of magnetotactic bacterium in a micro-fabricated maze
abstract
We demonstrate the closed-loop control of a magnetotactic bacterium (MTB), i.e., Magnetospirillum magnetotacticum, within a micro-fabricated maze using a magnetic-based manipulation system. The effect of the channel wall on the motion of the MTB is experimentally analyzed. This analysis is done by comparing the characteristics of the transient- and steady-states of the controlled MTB inside and outside a micro-fabricated maze. In this analysis, the magnetic dipole moment of our MTB is characterized using a motile technique (the u-turn technique), then used in the realization of a closed-loop control system. This control system allows the MTB to reach reference positions within a micro-fabricated maze with a channel width of 10 μm, at a velocity of 8 μm/s. Further, the control system positions the MTB within a region-of-convergence of 10 μm in diameter. Due to the effect of the channel wall, we observe that the velocity and the positioning accuracy of the MTB are decreased and increased by 71% and 44%, respectively.
Islam S. M. Khalil, Marc P. Pichel, Bart A. Reefman, Ozlem Sardan, Leon Abelmann, Sarthak Misra
ICRA4
2010 Novel four-point-probe design and nanorobotic dual endeffector strategy for electrical characterization of as-grown SWCNT bundles
abstract
In this paper, a novel nanorobotic strategy for non-destructive and direct electrical characterization of as-grown bundles of single-walled carbon nanotubes (SWCNTs) is presented. For this purpose, test patterns of SWCNT bundles having different diameters are grown on a silicon substrate by chemical vapor deposition. A new design of microstructured four-point-probes is proposed and fabricated allowing for direct contacting of vertically aligned bundles of SWCNTs. A nanorobotic setup is upgraded into a dual endeffector system to achieve good electrical contact between four-point-probe and SWCNT bundle and to perform electrical measurements. First experimental results of non-destructive electrical characterization are presented and discussed.
Volkmar Eichhorn, Sergej Fatikow, Ozlem Sardan, Torben Mikael Hansen, Peter Bøggild, Luigi G. Occhipinti
ICRA3
2009 NanoLab: A nanorobotic system for automated pick-and-place handling and characterization of CNTs
abstract
Carbon nanotubes (CNTs) are one of the most promising materials for nanoelectronic applications. Before bringing CNTs into large-scale production, a reliable nanorobotic system for automated handling and characterization as well as prototyping of CNT-based components is essential. This paper presents the NanoLab setup, a nanorobotic system that combines specially developed key components such as electrothermal microgrippers and mobile microrobots inside a scanning electron microscope. The working principle and fabrication of mobile microrobots and electrothermal microgripper as well as their interaction and integration is described. Furthermore, the NanoLab is used to explore novel key strategies such as automated locating of CNTs for pick-and-place handling and methods for electrical characterization of CNTs. The results have been achieved within the framework of a European research project where the scientific knowledge will be transfered into an industrial system that will be commercially available for potential customers.
Volkmar Eichhorn, Sergej Fatikow, Tim Wortmann, Christian Stolle, Christoph Edeler, Daniel Jasper, Ozlem Sardan, Peter Bøggild, Guillaume Boetsch, Christophe Canales, Reymond Clavel
ICRA7