共 90 条
- [71] AKIYAMA Y, SAKUMA T, FUNAKOSHI K, Et al., Atmospheric-operable bioactuator powered by insect muscle packaged with medium[J], Lab Chip, 13, 24, pp. 4870-4880, (2013)
- [72] WEBSTER V A., Fabrication of electrocompacted aligned collagen morphs for cardiomyocyte powered living machines[C], Lecture Notes in Artificial Intelligence, pp. 429-440, (2015)
- [73] YAMATSUTA E, BEH S P,, UESUGI K, Et al., A Micro Peristaltic pump using an optically controllable bioactuator[J], Engineering, 5, 3, pp. 580-585, (2019)
- [74] AKIYAMA Y, IWABUCHI K, FURUKAWA Y, Et al., Long-term and room temperature operable bioactuator powered by insect dorsal vessel tissue[J], Lab Chip, 9, 1, pp. 140-144, (2009)
- [75] WEBSTER V A., Aplysia Californica as a novel source of material for biohybrid robots and organic machines[C], Lecture Notes in Artificial Intelligence, pp. 365-374, (2016)
- [76] JO C,, PUGAL D,, OH I K, Et al., Recent advances in ionic polymer-metal composite actuators and their modeling and applications[J], Progress In Polymer Science, 38, 7, pp. 1037-1066, (2013)
- [77] HERR H, DENNIS R G., A swimming robot actuated by living muscle tissue[J], J. Neuroeng Rehabil, 1, 1, (2004)
- [78] PAGAN-DIAZ G J, ZHANG X, GRANT L, Et al., Simulation and fabrication of stronger,larger,and faster walking biohybrid machines[J], Adv. Funct. Mater, 28, 23, (2018)
- [79] THRIVIKRAMAN G, BODA S K, BASU B., Unraveling the mechanistic effects of electric field stimulation towards directing stem cell fate and function:A tissue engineering perspective[J], Biomaterials, 150, pp. 60-86, (2018)
- [80] RANGARAJAN S, MADDEN L, BURSAC N., Use of flow,electrical,and mechanical stimulation to promote engineering of striated muscles[J], Ann. Biomed Eng, 42, 7, pp. 1391-1405, (2014)