Advanced medical micro-robotics for early diagnosis and therapeutic interventions
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L. Marucci | T. Gorochowski | S. Hauert | B. Gil | E. Yeatman | Bing Li | Dandan Zhang | Hyun-Taek Lee | Hyun‐Taek Lee
[1] Qingsong Xu,et al. Design and Development of a Dexterous Bilateral Robotic Microinjection System Based on Haptic Feedback , 2023, IEEE Transactions on Automation Science and Engineering.
[2] Sajjad Rahmani Dabbagh,et al. 3D-printed microrobots from design to translation , 2022, Nature Communications.
[3] Rujie Sun,et al. Puffball‐Inspired Microrobotic Systems with Robust Payload, Strong Protection, and Targeted Locomotion for On‐Demand Drug Delivery , 2022, Advanced materials.
[4] T. Gorochowski,et al. Long-term imaging and spatio-temporal control of living cells using light , 2022, 2022 International Conference on Manipulation, Automation and Robotics at Small Scales (MARSS).
[5] D. Akin,et al. Volbots: Volvox Microalgae‐Based Robots for Multimode Precision Imaging and Therapy , 2022, Advanced Functional Materials.
[6] M. Khammash. Cybergenetics: Theory and Applications of Genetic Control Systems , 2022, Proceedings of the IEEE.
[7] Benny P. L. Lo,et al. Micro-object pose estimation with sim-to-real transfer learning using small dataset , 2022, Communications Physics.
[8] M. Sitti,et al. High shear rate propulsion of acoustic microrobots in complex biological fluids , 2022, Science advances.
[9] Aude Bolopion,et al. Mobile Microrobots for In Vitro Biomedical Applications: A Survey , 2021, IEEE Transactions on Robotics.
[10] T. Gorochowski,et al. Q-learning for real time control of heterogeneous microagent collectives , 2022, The 2022 Conference on Artificial Life.
[11] Zdenek Sofer,et al. Nano/Microrobots Line Up for Gastrointestinal Tract Diseases: Targeted Delivery, Therapy, and Prevention , 2022 .
[12] E. Yeatman,et al. A comparative review of artificial muscles for microsystem applications , 2021, Microsystems & Nanoengineering.
[13] Yuan Lu,et al. Untethered Microrobots for Active Drug Delivery: From Rational Design to Clinical Settings , 2021, Advanced healthcare materials.
[14] H. Duan,et al. 3D printed ultra-fast photothermal responsive shape memory hydrogel for microrobot , 2021, International Journal of Extreme Manufacturing.
[15] Carmen C. Mayorga-Martinez,et al. Ultrasonically Propelled Micro‐ and Nanorobots , 2021, Advanced Functional Materials.
[16] Bin Su,et al. Integration of sensing and shape-deforming capabilities for a bioinspired soft robot , 2021 .
[17] Xing Ma,et al. Active, Yet Little Mobility: Asymmetric Decomposition of H2O2 Is Not Sufficient in Propelling Catalytic Micromotors. , 2021, Journal of the American Chemical Society.
[18] Jonathan R. Karr,et al. Editorial: Computer-Aided Biodesign Across Scales , 2021, Frontiers in Bioengineering and Biotechnology.
[19] Jianzhong Shang,et al. The emerging technology of biohybrid micro-robots: a review , 2021, Bio-Design and Manufacturing.
[20] M. di Bernardo,et al. Cheetah: A Computational Toolkit for Cybergenetic Control. , 2021, ACS synthetic biology.
[21] Abdullah T. Alsharhan,et al. Integrated 3D printed microfluidic circuitry and soft microrobotic actuators via in situ direct laser writing , 2021 .
[22] Joseph Wang,et al. Smart Materials for Microrobots. , 2021, Chemical reviews.
[23] M. Pumera,et al. 3D printing of functional microrobots. , 2021, Chemical Society reviews.
[24] Cédric Clévy,et al. 4D Printing: Enabling Technology for Microrobotics Applications , 2021, Adv. Intell. Syst..
[25] V. Holubec,et al. Reinforcement learning with artificial microswimmers , 2018, Science Robotics.
[26] T. Gorochowski,et al. An open platform for high-resolution light-based control of microscopic collectives , 2020, bioRxiv.
[27] M. Medina‐Sánchez,et al. Engineering microrobots for targeted cancer therapies from a medical perspective , 2020, Nature Communications.
[28] M. Sitti,et al. Microrobots: Zwitterionic 3D‐Printed Non‐Immunogenic Stealth Microrobots (Adv. Mater. 42/2020) , 2020 .
[29] Guang-Zhong Yang,et al. Data-Driven Microscopic Pose and Depth Estimation for Optical Microrobot Manipulation , 2020 .
[30] M. Sitti,et al. Carbon nitride-based light-driven microswimmers with intrinsic photocharging ability , 2020, Proceedings of the National Academy of Sciences.
[31] A. deMello,et al. Biodegradable Metal–Organic Framework‐Based Microrobots (MOFBOTs) , 2020, Advanced healthcare materials.
[32] P. Ormos,et al. Single-Cell Elasticity Measurement with an Optically Actuated Microrobot , 2020, Micromachines.
[33] A. Menciassi,et al. Medical Imaging of Microrobots: Towards In Vivo Applications. , 2020, ACS nano.
[34] Benny Lo,et al. Distributed Force Control for Microrobot Manipulation via Planar Multi‐Spot Optical Tweezer , 2020, Advanced Optical Materials.
[35] Guang-Zhong Yang,et al. Miniaturized Piezo Force Sensor for a Medical Catheter and Implantable Device , 2020, ACS applied electronic materials.
[36] S. Hauert,et al. In silico modelling of cancer nanomedicine, across scales and transport barriers , 2020, npj Computational Materials.
[37] Ye Chen,et al. Medical micro/nanorobots in complex media. , 2020, Chemical Society reviews.
[38] M. Sitti,et al. Elucidating the interaction dynamics between microswimmer body and immune system for medical microrobots , 2020, Science Robotics.
[39] Oliver Ray,et al. Computer-Aided Whole-Cell Design: Taking a Holistic Approach by Integrating Synthetic With Systems Biology , 2020, Frontiers in Bioengineering and Biotechnology.
[40] Thierry Burnouf,et al. Intelligent micro-/nanorobots as drug and cell carrier devices for biomedical therapeutic advancement: Promising development opportunities and translational challenges. , 2020, Biomaterials.
[41] D. Gracias,et al. Untethered Grippers for Active Single Cell Biopsy. , 2020, Nano letters.
[42] Alex J. H. Fedorec,et al. Toward Engineering Biosystems With Emergent Collective Functions , 2020, Frontiers in Bioengineering and Biotechnology.
[43] Deasung Jang,et al. Acoustic bubble-based drug manipulation: Carrying, releasing and penetrating for targeted drug delivery using an electromagnetically actuated microrobot , 2020 .
[44] Guang-Zhong Yang,et al. Automatic Microsurgical Skill Assessment Based on Cross-Domain Transfer Learning , 2020, IEEE Robotics and Automation Letters.
[45] Bo Li,et al. Micro/Nano Motor Navigation and Localization via Deep Reinforcement Learning , 2020, Advanced Theory and Simulations.
[46] Sungwoong Jeon,et al. Magnetically Actuated SiCN-Based Ceramic Microrobot for Guided Cell Delivery. , 2020, Advanced healthcare materials.
[47] Joseph Wang,et al. Onion‐like Multifunctional Microtrap Vehicles for Attraction–Trapping–Destruction of Biological Threats , 2020, Angewandte Chemie.
[48] Bo Li,et al. Efficient Navigation of Colloidal Robots in an Unknown Environment via Deep Reinforcement Learning , 2019, Adv. Intell. Syst..
[49] Guang-Zhong Yang,et al. Three-Dimensional Pose Estimation of Optically Transparent Microrobots , 2020, IEEE Robotics and Automation Letters.
[50] Ara Nazarian,et al. Design of biodegradable, implantable devices towards clinical translation , 2019, Nature Reviews Materials.
[51] Guang-Zhong Yang,et al. A microsurgical robot research platform for robot-assisted microsurgery research and training , 2019, International Journal of Computer Assisted Radiology and Surgery.
[52] Nitesh Nama,et al. 3D steerable, acoustically powered microswimmers for single-particle manipulation , 2019, Science Advances.
[53] Zhizhou Zhang,et al. Autonomous in-situ correction of fused deposition modeling printers using computer vision and deep learning , 2019, Manufacturing Letters.
[54] M. Sitti,et al. Translational prospects of untethered medical microrobots , 2019, Progress in Biomedical Engineering.
[55] Yajing Shen,et al. Low-Invasive Cell Injection: Low-Invasive Cell Injection based on Rotational Microrobot (Adv. Biosys. 7/2019) , 2019, Advanced Biosystems.
[56] Carmel Majidi,et al. A biosensing soft robot: Autonomous parsing of chemical signals through integrated organic and inorganic interfaces , 2019, Science Robotics.
[57] F. Veronica Greco,et al. Living computers powered by biochemistry , 2019, The Biochemist.
[58] Jun Liu,et al. Robotic Micromanipulation: Fundamentals and Applications , 2019, Annu. Rev. Control. Robotics Auton. Syst..
[59] S. N. Bhatia,et al. Synthetic and living micropropellers for convection-enhanced nanoparticle transport , 2019, Science Advances.
[60] Benjamin V. Johnson,et al. A Microforce-Sensing Mobile Microrobot for Automated Micromanipulation Tasks , 2019, IEEE Transactions on Automation Science and Engineering.
[61] Martin Pumera,et al. Recoverable Bismuth-Based Microrobots: Capture, Transport, and On-Demand Release of Heavy Metals and an Anticancer Drug in Confined Spaces. , 2019, ACS applied materials & interfaces.
[62] Hussein Hussein,et al. Characterization of bistable mechanisms for microrobotics and mesorobotics , 2019, Journal of Micro-Bio Robotics.
[63] Deasung Jang,et al. Targeted drug delivery technology using untethered microrobots: a review , 2019, Journal of Micromechanics and Microengineering.
[64] Tal Danino,et al. Programmable bacteria induce durable tumor regression and systemic antitumor immunity , 2019, Nature Medicine.
[65] Lidong Yang,et al. Real-time tracking of fluorescent magnetic spore–based microrobots for remote detection of C. diff toxins , 2019, Science Advances.
[66] ChangKyu Yoon,et al. Biodegradable Thermomagnetically Responsive Soft Untethered Grippers. , 2018, ACS applied materials & interfaces.
[67] Salvador Pané,et al. Imaging Technologies for Biomedical Micro‐ and Nanoswimmers , 2018, Advanced Materials Technologies.
[68] P. Fischer,et al. A swarm of slippery micropropellers penetrates the vitreous body of the eye , 2018, Science Advances.
[69] Salvador Pané,et al. 3D Printed Enzymatically Biodegradable Soft Helical Microswimmers , 2018, Advanced Functional Materials.
[70] Wei Gao,et al. Photocatalytic Micro/Nanomotors: From Construction to Applications. , 2018, Accounts of chemical research.
[71] Jesper Glückstad,et al. Natural convection induced by an optically fabricated and actuated microtool with a thermoplasmonic disk. , 2018, Optics letters.
[72] Arianna Menciassi,et al. An Intravascular Magnetic Catheter Enables the Retrieval of Nanoagents from the Bloodstream , 2018, Advanced science.
[73] M. Y. Thanuja,et al. Bioengineered cellular and cell membrane‐derived vehicles for actively targeted drug delivery: So near and yet so far , 2018, Advanced drug delivery reviews.
[74] Ran Wang,et al. Development of a magnetic microrobot for carrying and delivering targeted cells , 2018, Science Robotics.
[75] K. Bente,et al. Biohybrid and Bioinspired Magnetic Microswimmers. , 2018, Small.
[76] Anita Jannasch,et al. Influence of Enzyme Quantity and Distribution on the Self-Propulsion of Non-Janus Urease-Powered Micromotors. , 2018, Journal of the American Chemical Society.
[77] Anish Vasan,et al. Motion-Based Immunological Detection of Zika Virus Using Pt-Nanomotors and a Cellphone. , 2018, ACS nano.
[78] Guang-Zhong Yang,et al. A Monolithic Force-Sensitive 3D Microgripper Fabricated on the Tip of an Optical Fiber Using 2-Photon Polymerization. , 2018, Small.
[79] Kwok Siong Teh,et al. Additive direct-write microfabrication for MEMS: A review , 2017 .
[80] Sara Nocentini,et al. Photonic Microhand with Autonomous Action , 2017, Advanced materials.
[81] M. Sitti,et al. Magnetotactic Bacteria Powered Biohybrids Target E. coli Biofilms. , 2017, ACS nano.
[82] Stefano Scheggi,et al. Stimuli-Responsive Soft Untethered Grippers for Drug Delivery and Robotic Surgery , 2017, Front. Mech. Eng..
[83] Aída Martín,et al. Utilizing Iron's Attractive Chemical and Magnetic Properties in Microrocket Design, Extended Motion, and Unique Performance. , 2017, Small.
[84] Qingsong Xu,et al. A review on actuation and sensing techniques for MEMS-based microgrippers , 2017 .
[85] Guang-Zhong Yang,et al. Towards hybrid microrobots using pH- and photo-responsive hydrogels for cancer targeting and drug delivery , 2017, 2017 IEEE International Conference on Robotics and Automation (ICRA).
[86] Joseph Wang,et al. Micro/nanorobots for biomedicine: Delivery, surgery, sensing, and detoxification , 2017, Science Robotics.
[87] Antonio Celani,et al. Flow Navigation by Smart Microswimmers via Reinforcement Learning , 2017, Physical review letters.
[88] Jiachen Zhang,et al. Reliable Grasping of Three-Dimensional Untethered Mobile Magnetic Microgripper for Autonomous Pick-and-Place , 2017, IEEE Robotics and Automation Letters.
[89] Eric Diller,et al. Tetherless mobile micrograsping using a magnetic elastic composite material , 2016 .
[90] Mohamed Sultan Mohamed Ali,et al. Development of a shape-memory-alloy micromanipulator based on integrated bimorph microactuators , 2016 .
[91] Robert J. Wood,et al. An integrated design and fabrication strategy for entirely soft, autonomous robots , 2016, Nature.
[92] M. Omar Din,et al. Synchronized cycles of bacterial lysis for in vivo delivery , 2016, Nature.
[93] Claudio Pacchierotti,et al. Evaluation of an electromagnetic system with haptic feedback for control of untethered, soft grippers affected by disturbances , 2016, 2016 6th IEEE International Conference on Biomedical Robotics and Biomechatronics (BioRob).
[94] Islam S. M. Khalil,et al. In vitro validation of clearing clogged vessels using microrobots , 2016, 2016 6th IEEE International Conference on Biomedical Robotics and Biomechatronics (BioRob).
[95] ChangKyu Yoon,et al. Control of untethered soft grippers for pick-and-place tasks , 2016, 2016 6th IEEE International Conference on Biomedical Robotics and Biomechatronics (BioRob).
[96] Y. W. R. Amarasinghe,et al. New MEMS based micro gripper using SMA for micro level object manipulation and assembling , 2016, 2016 Moratuwa Engineering Research Conference (MERCon).
[97] Metin Sitti,et al. Targeted Drug Delivery and Imaging Using Mobile Milli/Microrobots: A Promising Future Towards Theranostic Pharmaceutical Design. , 2016, Current pharmaceutical design.
[98] Oliver G. Schmidt,et al. Carbonate-based Janus micromotors moving in ultra-light acidic environment generated by HeLa cells in situ , 2016, Scientific Reports.
[99] Oliver G Schmidt,et al. Medibots: Dual‐Action Biogenic Microdaggers for Single‐Cell Surgery and Drug Release , 2016, Advanced materials.
[100] Yanling Tian,et al. Design and Control of a Compliant Microgripper With a Large Amplification Ratio for High-Speed Micro Manipulation , 2016, IEEE/ASME Transactions on Mechatronics.
[101] Toshio Fukuda,et al. Contact assembly of cell-laden hollow microtubes through automated micromanipulator tip locating , 2016 .
[102] Guang-Zhong Yang,et al. Direct laser written passive micromanipulator end-effector for compliant object manipulation , 2015, 2015 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS).
[103] Tatsuo Arai,et al. Generation of swirl flow by needle vibration for micro manipulation , 2015, 2015 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS).
[104] Robert Lewis Reuben,et al. Micro-tweezers: design, fabrication, simulation and testing of a pneumatically actuated micro-gripper for micromanipulation and microtactile sensing , 2015 .
[105] Xinyu Liu,et al. A MEMS microgripper with two-axis actuators and force sensors for microscale mechanical characterization of soft materials , 2015, 2015 IEEE International Conference on Automation Science and Engineering (CASE).
[106] Qingsong Xu,et al. An overview of micro-force sensing techniques , 2015 .
[107] Qingsong Xu,et al. Design, Fabrication, and Testing of an MEMS Microgripper With Dual-Axis Force Sensor , 2015, IEEE Sensors Journal.
[108] Yong Liu,et al. 3D printing of smart materials: A review on recent progresses in 4D printing , 2015 .
[109] Lining Sun,et al. PZT driven triple-finger end effectors for micro-manipulation , 2015, 2015 IEEE International Conference on Cyber Technology in Automation, Control, and Intelligent Systems (CYBER).
[110] Fei Li,et al. A Force to Be Reckoned With: A Review of Synthetic Microswimmers Powered by Ultrasound. , 2015, Small.
[111] D. Rus,et al. Design, fabrication and control of soft robots , 2015, Nature.
[112] Seungyoung Ahn,et al. Propulsion and control of implantable micro-robot based on wireless power transfer , 2015, 2015 IEEE Wireless Power Transfer Conference (WPTC).
[113] F. Qiu,et al. Controlled In Vivo Swimming of a Swarm of Bacteria‐Like Microrobotic Flagella , 2015, Advanced materials.
[114] Metin Sitti,et al. Three-dimensional heterogeneous assembly of coded microgels using an untethered mobile microgripper. , 2015, Lab on a chip.
[115] P. Knoepfler. From bench to FDA to bedside: US regulatory trends for new stem cell therapies. , 2015, Advanced drug delivery reviews.
[116] Eric Diller,et al. Biomedical Applications of Untethered Mobile Milli/Microrobots , 2015, Proceedings of the IEEE.
[117] Hye Rin Kwag,et al. Self-Folding Thermo-Magnetically Responsive Soft Microgrippers , 2015, ACS applied materials & interfaces.
[118] Liangfang Zhang,et al. Artificial Micromotors in the Mouse’s Stomach: A Step toward in Vivo Use of Synthetic Motors , 2014, ACS nano.
[119] S. Fusco,et al. Microrobotics: Electroforming of Implantable Tubular Magnetic Microrobots for Wireless Ophthalmologic Applications (Adv. Healthcare Mater. 2/2015) , 2015 .
[120] Franziska Ullrich,et al. Electroforming of Implantable Tubular Magnetic Microrobots for Wireless Ophthalmologic Applications , 2015, Advanced healthcare materials.
[121] G. Daley,et al. Use of differentiated pluripotent stem cells in replacement therapy for treating disease , 2014, Science.
[122] Wei Gao,et al. Synthetic micro/nanomotors in drug delivery. , 2014, Nanoscale.
[123] Dimitris C. Lagoudas,et al. Origami-inspired active structures: a synthesis and review , 2014 .
[124] Hye Rin Kwag,et al. Stimuli-responsive theragrippers for chemomechanical controlled release. , 2014, Angewandte Chemie.
[125] James Merrell,et al. Modelling and experimental verification of heat dissipation mechanisms in an SU-8 electrothermal microgripper , 2014 .
[126] László Hajba,et al. Circulating tumor-cell detection and capture using microfluidic devices , 2014 .
[127] M. Sitti,et al. Three‐Dimensional Programmable Assembly by Untethered Magnetic Robotic Micro‐Grippers , 2014 .
[128] Sabine Hauert,et al. Mechanisms of cooperation in cancer nanomedicine: towards systems nanotechnology. , 2014, Trends in biotechnology.
[129] Ritwik Chattaraj,et al. Design and control of two fingered compliant gripper for micro gripping , 2014, 2014 International Conference on Informatics, Electronics & Vision (ICIEV).
[130] Salvador Pané,et al. Self-folding mobile microrobots for biomedical applications , 2014, 2014 IEEE International Conference on Robotics and Automation (ICRA).
[131] Guang-Zhong Yang,et al. From Passive Tool Holders to Microsurgeons: Safer, Smaller, Smarter Surgical Robots , 2014, IEEE Transactions on Biomedical Engineering.
[132] Christopher A. Voigt,et al. Principles of genetic circuit design , 2014, Nature Methods.
[133] Metin Sitti,et al. Biopsy using a Magnetic Capsule Endoscope Carrying, Releasing, and Retrieving Untethered Microgrippers , 2014, IEEE Transactions on Biomedical Engineering.
[134] S. O. Reza Moheimani,et al. Design and control of a MEMS micro-gripper with integrated electro-thermal force sensor , 2013, 2013 Australian Control Conference.
[135] Ming-Chuan Leu,et al. Additive manufacturing: technology, applications and research needs , 2013, Frontiers of Mechanical Engineering.
[136] Li Zhang,et al. Fabrication and Characterization of Magnetic Microrobots for Three-Dimensional Cell Culture and Targeted Transportation , 2013, Advanced materials.
[137] Y. Yang,et al. A hydrogel-based intravascular microgripper manipulated using magnetic fields , 2013, 2013 Transducers & Eurosensors XXVII: The 17th International Conference on Solid-State Sensors, Actuators and Microsystems (TRANSDUCERS & EUROSENSORS XXVII).
[138] Sang Kug Chung,et al. On-chip micromanipulation by AC-EWOD driven twin bubbles , 2013 .
[139] Evin Gultepe,et al. Biologic tissue sampling with untethered microgrippers. , 2013, Gastroenterology.
[140] Fumihito Arai,et al. On-chip microrobot for investigating the response of aquatic microorganisms to mechanical stimulation. , 2013, Lab on a chip.
[141] A. Kalloo,et al. Biopsy with Thermally‐Responsive Untethered Microtools , 2013, Advanced materials.
[142] Leonid Ionov,et al. 3D Microfabrication using Stimuli-Responsive Self-Folding Polymer Films , 2013 .
[143] Nicholas G. Dagalakis,et al. Automated Multiprobe Microassembly Using Vision Feedback , 2012, IEEE Transactions on Robotics.
[144] Kaufui Wong,et al. A Review of Additive Manufacturing , 2012 .
[145] Sadik Esener,et al. Acoustic droplet vaporization and propulsion of perfluorocarbon-loaded microbullets for targeted tissue penetration and deformation. , 2012, Angewandte Chemie.
[146] Reza Ghadiri,et al. Microassembly of complex and three-dimensional microstructures using holographic optical tweezers , 2012 .
[147] Bradley J. Nelson,et al. Micromachines: Magnetic Helical Micromachines: Fabrication, Controlled Swimming, and Cargo Transport (Adv. Mater. 6/2012) , 2012 .
[148] Joseph Wang,et al. Hybrid nanomotor: a catalytically/magnetically powered adaptive nanowire swimmer. , 2011, Small.
[149] Yong Zhu,et al. Design, Modeling, and Control of a Micromachined Nanopositioner With Integrated Electrothermal Actuation and Sensing , 2011, Journal of Microelectromechanical Systems.
[150] Hui Xie,et al. Development of a Flexible Robotic System for Multiscale Applications of Micro/Nanoscale Manipulation and Assembly , 2011, IEEE/ASME Transactions on Mechatronics.
[151] Tao Chen,et al. Micro manipulation based on adhesion control with compound vibration , 2010, 2010 IEEE/RSJ International Conference on Intelligent Robots and Systems.
[152] Yu Sun,et al. Single Cell Deposition and Patterning with a Robotic System , 2010, PloS one.
[153] Ioannis K. Kaliakatsos,et al. Microrobots for minimally invasive medicine. , 2010, Annual review of biomedical engineering.
[154] Weibin Rong,et al. A hybrid-type electrostatically driven microgripper with an integrated vacuum tool , 2010 .
[155] Lixin Dong,et al. Artificial bacterial flagella: Fabrication and magnetic control , 2009 .
[156] David H Gracias,et al. Tetherless thermobiochemically actuated microgrippers , 2009, Proceedings of the National Academy of Sciences.
[157] D. Gracias,et al. Pick-and-place using chemically actuated microgrippers. , 2008, Journal of the American Chemical Society.
[158] Jiang Zhe,et al. A Capillary Microgripper based on Electrowetting , 2008 .
[159] Pietro Ferraro,et al. Dielectrophoretic trapping of suspended particles by selective pyroelectric effect in lithium niobate crystals , 2008 .
[160] Xinyu Liu,et al. Micronewton force-controlled manipulation of biomaterials using a monolithic MEMS microgripper with two-axis force feedback , 2008, 2008 IEEE International Conference on Robotics and Automation.
[161] Robby Ebert,et al. Laser micro sintering: A new method to generate metal and ceramic parts of high resolution with sub-micrometer powder , 2008 .
[162] N. Chaillet,et al. Dynamic modelling of a submerged freeze microgripper using a thermal network , 2007, 2007 IEEE/ASME international conference on advanced intelligent mechatronics.
[163] Metin Sitti,et al. Microscale and nanoscale robotics systems [Grand Challenges of Robotics] , 2007, IEEE Robotics & Automation Magazine.
[164] O. Velev,et al. Remotely powered self-propelling particles and micropumps based on miniature diodes. , 2007, Nature materials.
[165] B. Nelson,et al. Monolithically Fabricated Microgripper With Integrated Force Sensor for Manipulating Microobjects and Biological Cells Aligned in an Ultrasonic Field , 2007, Journal of Microelectromechanical Systems.
[166] Zhaowei Zhong,et al. A microgripper using piezoelectric actuation for micro-object manipulation , 2007 .
[167] Bradley J. Nelson,et al. Design of a Micro-Gripper and an Ultrasonic Manipulator for Handling Micron Sized Objects , 2006, 2006 IEEE/RSJ International Conference on Intelligent Robots and Systems.
[168] P. Dario,et al. Design and fabrication of an electrostatically driven microgripper for blood vessel manipulation , 2006 .
[169] Byung Kyu Kim,et al. Institute of Physics Publishing Smart Materials and Structures a Superelastic Alloy Microgripper with Embedded Electromagnetic Actuators and Piezoelectric Force Sensors: a Numerical and Experimental Study , 2022 .
[170] Marcus L. Roper,et al. Microscopic artificial swimmers , 2005, Nature.
[171] N. Chronis,et al. Electrothermally activated SU-8 microgripper for single cell manipulation in solution , 2005, Journal of Microelectromechanical Systems.
[172] I. Fassi,et al. Development of a gripping system based on capillary force , 2005, (ISATP 2005). The 6th IEEE International Symposium on Assembly and Task Planning: From Nano to Macro Assembly and Manufacturing, 2005..
[173] Ole Hansen,et al. Electro-thermally actuated microgrippers with integrated force-feedback , 2005 .
[174] H. Grutzeck,et al. Investigations of the capillary effect for gripping silicon chips , 2005 .
[175] Byungkyu Kim,et al. A superelastic alloy microgripper with embedded electromagnetic actuators and piezoelectric sensors , 2004, SPIE Optics East.
[176] Jing Liu,et al. Freeze tweezer to manipulate mini/micro objects , 2004 .
[177] D. S. Haliyo,et al. [mü]MAD, the adhesion based dynamic micro-manipulator , 2003 .
[178] D. Grier. A revolution in optical manipulation , 2003, Nature.
[179] Evgueni V. Bordatchev,et al. Microgripper: Design, finite element analysis and laser microfabrication , 2003, Proceedings International Conference on MEMS, NANO and Smart Systems.
[180] Arianna Menciassi,et al. Force sensing microinstrument for measuring tissue properties and pulse in microsurgery , 2003 .
[181] W. Brenner,et al. Gripping tools for handling and assembly of microcomponents , 2002, 2002 23rd International Conference on Microelectronics. Proceedings (Cat. No.02TH8595).
[182] Ivo W. Rangelow,et al. Electrostatically driven microgripper , 2002 .
[183] C. Bark,et al. Gripping with low viscosity fluids , 1998, Proceedings MEMS 98. IEEE. Eleventh Annual International Workshop on Micro Electro Mechanical Systems. An Investigation of Micro Structures, Sensors, Actuators, Machines and Systems (Cat. No.98CH36176.
[184] Ronald S. Fearing,et al. Survey of sticking effects for micro parts handling , 1995, Proceedings 1995 IEEE/RSJ International Conference on Intelligent Robots and Systems. Human Robot Interaction and Cooperative Robots.