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Nanogap enabled trajectory splitting and 3D optical coupling in self-assembled microtubular cavities

, , , , , , , , , and . ACS Nano, 15 (11): 18411--18418 (Nov 12, 2021)
DOI: 10.1021/acsnano.1c07968

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Magnetic control of self-propelled microjets under ultrasound image guidance., , , and . BioRob, page 169-174. IEEE, (2014)Medibots: Dual-Action Biogenic Microdaggers for Single-Cell Surgery and Drug Release, , , and . Advanced Materials, 28 (5): 832--837 (2016)Morphological Differentiation of Neurons on Microtopographic Substrates Fabricated by Rolled-Up Nanotechnology, , , , , , , and . Advanced Engineering Materials, 12 (9): B558--B564 (2010)Superfast Motion of Catalytic Microjet Engines at Physiological Temperature, , , , and . Journal of the American Chemical Society, 133 (38): 14860--14863 (2011)Electroforming-free Memristors for Hardware Security Primitives., , , , , , , , and . IVSW, page 67-70. IEEE, (2019)Tubular Micro-nanorobots: Smart Design for Bio-related Applications., , , , , and . SSR@ICRA, volume 8336 of Lecture Notes in Computer Science, page 16-27. Springer, (2013)Perovskite origami for programmable microtube lasing, , , , , , , , , and 4 other author(s). Adv. Funct. Mater., (Sep 19, 2021)Nanogap enabled trajectory splitting and 3D optical coupling in self-assembled microtubular cavities, , , , , , , , , and . ACS Nano, 15 (11): 18411--18418 (Nov 12, 2021)Biomimetic Microelectronics for Regenerative Neuronal Cuff Implants, , , , , , , , , and . Advanced Materials, 27 (43): 6797--6805 (September 2015)System-Engineered Miniaturized Robots: From Structure to Intelligence., and . Adv. Intell. Syst., 3 (10): 2170072 (2021)