经同行评审的国际期刊论文

  1. Printed all-organic transparent microelectrodes using PEDOT:PSS and PEDOT:PSS/PEGDA hydrogel for neural stimulation and recording, Tatsuya Murakami, Shotaro Yoshida, Mechanical Engineering Journal, (2026) accepted.
  2. Highly flexible, thin, and stable battery integrating organohydrogel electrolytes and carbon fabric electrodes for soft electronics, Takuto Nakabayashi, Tatsuya Murakami, Arata Okoshi, Shotaro Yoshida, Mechanical Engineering Journal, (2026) accepted.
  3. Totally organic and self-powered glucose sensor based on energy-harvesting enzymatic biofuel cells, Hitomi Yahagi, Shotaro Yoshida, Shun Okada, Kan Shoji and Yuya Morimoto, Mechanical Engineering Journal, (2026) accepted.
  4. Low-cost fabrication of graphene-based microelectrodes via SU-8 latent-pattern lift-off for organic microdevices, Arata Okoshi, Tatsuya Murakami, Toshiya Aoki, Shotaro Yoshida, Journal of Micromechanics and Microengineering, 36, 045013, (2026). [Link] [日语简明介绍]
  5. Microstructured chitosan mesh scaffold for efficient production of cell-cultured meat, Jiacheng Xu, Takeshi Hori, Kennedy Omondi Okeyo, Buntaro Tsurumi, Shotaro Yoshida, Yuji Nashimoto, Hirokazu Kaji, Scientific Reports, (2026).
  6. Carbon Nanotube-based Printed All-organic Microelectrode Arrays for Neural Stimulation and Recording, Tatsuya Murakami, Naoki Yada, Shotaro Yoshida Micromachines, 15(5), 650 (2024). [Link] [日语简明介绍]
  7. Enzyme electrode for glucose oxidation using low‐solubility 4‐aminodiphenylamine derivatives as electron mediator Yosuke Masakari, Naoya Totsuka, Yasutomo Shinohara, Shotaro Yoshida, Hiroya Abe, Kotaro Ito, Matsuhiko Nishizawa Electrochemical Science Advances, 2, e2100036 (2022).
  8. Porous Microneedle-Based Wearable Device for Monitoring of Transepidermal Potential Yuina Abe, Ryohei Takizawa, Natsumi Kimura, Hajime Konno, Shotaro Yoshida, Matsuhiko Nishizawa, Biomedical Engineering Advances, 1, 10004 (2021)
  9. Transdermal electroosmotic flow generated by a porous microneedle array patch  Shinya Kusama, Kaito Sato, Yuuya Matsui, Natsumi Kimura, Hiroya Abe, Shotaro Yoshida, Matsuhiko Nishizawa, Nature Communications, 12, 658 (2021).
  10. Totally organic electrical skin patch powered by flexible biobattery Shotaro Yoshida, Hiroya Abe, Yuina Abe, Shinya Kusama, Kenichi Tsukada, Ryo Komatsubara, Matsuhiko Nishizawa, Journal of Physics: Energy, 2(4), 044004 (2020).
  11. Hydrogel-based sealed microchamber arrays for rapid medium exchange and drug testing of cell spheroids Shotaro Yoshida, Kensuke Sumomozawa, Kuniaki Nagamine, Matsuhiko Nishizawa, Biomedical Microdevices, 22(3), 49 (2020).  
  12. Totally Transparent Hydrogel-Based Subdural Electrode with Patterned Salt Bridge Ayaka Nishimura, Ryota Suwabe, Yuka Ogihara, Shotaro Yoshida, Hiroya Abe, Shin-ichiro Osawa, Atsuhiro Nakagawa, Teiji Tominaga, Matsuhiko Nishizawa, Biomedical Microdevices, 22, 57 (2020). 
  13. Series-Connected Flexible Biobatteries for Higher-Voltage Electrical Skin Patches Shotaro Yoshida, Takaya Mizuno, Shinya Kusama, Kaito Sato, Bibek Raut, Matsuhiko Nishizawa, ACS Applied Electronic Materials, 2(1), 170 – 176 (2019). 
  14. Self-Moisturizing Smart Contact Lens Employing Electroosmosis Shinya Kusama, Kaito Sato, Shotaro Yoshida, Matsuhiko Nishizawa, Advanced Materials Technologies, 5(1), 1900889 (2019). 
  15. Hydrogel-Based Organic Subdural Electrode with High Conformability to Brain Surface. Shuntaro Oribe*, Shotaro Yoshida*(*equal contribution), Shinya Kusama, Shin-Ichiro Osawa, Atsuhiro Nakagawa, Masaki Iwasaki, Teiji Tominaga, Matsuhiko Nishizawa, Scientific Reports, 9(1), 13379 (2019). 
  16. Red Light-Promoted Skin Barrier Recovery: Spatiotemporal Evaluation by Transepidermal Potential Yuina Abe, Hajime Konno, Shotaro Yoshida, Takeshi Yamauchi, Kenshi Yamasaki, Mitsuhiro Denda, Matsuhiko Nishizawa, PLoS ONE, 14(7), e0219198 (2019) 
  17. Transepidermal Potential of the Stretched Skin Yuina Abe, Hajime Konno, Shotaro Yoshida, Matsuhiko Nishizawa, Journal of Biomechanical Engineering, 141(8), 084503 (2019). 
  18. Hydrogel Microchambers Integrated with Organic Electrodes for Efficient Electrical Stimulation of Human iPSC-derived Cardiomyocytes Shotaro Yoshida, Kensuke Sumomozawa, Kuniaki Nagamine, Matsuhiko Nishizawa, Macromolecular Bioscience, 19(6) 1900060 (2019). 
  19. 3D arrays of microcages by two-photon lithography for spatial organization of living cells. Florian Larramendy, Shotaro Yoshida, Daniela Maier, Zoltan Fekete, Shoji Takeuchi, Oliver Paul, Lab on a chip, 19(5), 875 – 884 (2019). 
  20. Organic Electrochromic Timer for Enzymatic Skin Patches Hiroyuki Kai, Wataru Suda, Shotaro Yoshida, Matsuhiko Nishizawa, Biosensors and Bioelectronics, 123(1) 108 – 113 (2019).
  21. Multipoint Bending and Shape Retention of a Pneumatic Bending Actuator by a Variable Stiffness Endoskeleton Yoshida, Shotaro, Morimoto, Yuya, Zheng, Lanying, Onoe, Hiroaki, Takeuchi, Shoji, Soft Robotics, 5(6), 718 – 725 (2018).
  22. Assembly and Connection of Micropatterned Single Neurons for Neuronal Network Formation Yoshida, Shotaro, Kato-Negishi, Midori, Takeuchi, Shoji, Micromachines, 9(5), 235 (2018). 
  23. Photolithographic patterned surface forms size-controlled lipid vesicles. M Gertrude Gutierrez, Shotaro Yoshida, Noah Malmstadt, Shoji Takeuchi, APL bioengineering, 2(1), 016104 (2018).
  24. Surface modification for patterned cell growth on substrates with pronounced topographies using sacrificial photoresist and parylene-C peel-off Larramendy, F., Yoshida, S., Jalabert, L., Takeuchi, S., Paul, O., Journal of Micromechanics and Microengineering, 26(9), 095017 (2016).  
  25. Mobile Microplates for Morphological Control and Assembly of Individual Neural Cells Yoshida, S., Teshima, T., Kuribayashi-Shigetomi, K., Takeuchi, S., Advanced Healthcare Materials, 5(4), 415 – 420 (2016). 
  26. Vertical Flow Lithography for Fabrication of 3D Anisotropic Particles Shohei Habasaki, Won Chul Lee, Shotaro Yoshida, Shoji Takeuchi, Small, 11(48), 6391 – 6396 (2015). 
  27. Liquid-filled tunable lenticular lens Yoshinobu Iimura, Hiroaki Onoe, Tetsuhiko Teshima, Yun Jung Heo, Shotaro Yoshida, Yuya Morimoto, Shoji Takeuchi, Journal of Micromechanics and Microengineering, 25(3), 035030 (2015). 
  28. Three-Dimensional Microassembly of Cell-Laden Microplates by in situ Gluing with Photocurable Hydrogels. Shotaro Yoshida, Koji Sato, Shoji Takeuchi, International Journal of Automation Technology, 8(1), 95 – 101 (2014). 
  29. Relationship between phase and amplitude generalization errors in complex- and real-valued feedforward neural networks Akira Hirose, Shotaro Yoshida, Neural Computing & Applications, 22(7-8), 1357 – 1366 (2013). 
  30. Generalization Characteristics of Complex-Valued Feedforward Neural Networks in Relation to Signal Coherence Akira Hirose, Shotaro Yoshida, IEEE Transactions on Neural Networks and Learning Systems, 23(4), 541 – 551 (2012). 

获奖

通过竞争性科研经费与研究资助开展的课题

  • 2026–2029年度“融合有机电子电路与培养脑回路的电子脑组织创建”,日本科学技术振兴机构 PRESTO(さきがけ)“通过理解与控制多细胞动态创建超生物组织”(项目负责人)
  • 2025–2026年度“面向生物计算机回路构建的培养神经元自由输送与动态布线技术开发”,日本文部科学省 学术变革领域研究(A)公开征集研究(项目负责人)
  • 2024–2025年度“面向环境友好型机器人的全有机材料电动软体机器人执行器开发”,第42届卡西欧科学振兴财团研究资助 (项目负责人)
  • 2024–2026年度“面向环境探测软体机器人的具有力觉传感功能的变色龙皮肤显示器开发”,日挥・实吉奖学会研究资助(项目负责人)
  • 2024–2026年度“可自主驱动的生物混合机器人创建”,日本学术振兴会 科研费・基础研究(B)(共同研究者)
  • 2023–2027年度“通过有机离子电子学开拓神经元—胶质细胞回路的单细胞级仿生系统”,日本学术振兴会 科研费・基础研究(B) (项目负责人)
  • 2023年度“利用新型凝胶基板开发柔性全有机电子电路印刷技术”,鹰野学术振兴财团2023年度研究资助 (项目负责人)
  • 2023年度“面向可穿戴人体通电器件的小型生物燃料电池高功率与高耐久性技术开发”,Power Academy研究资助 (项目负责人)
  • 2021–2023年度“可再现衰老时运动功能下降的脑—骨骼肌模型创建”,日本学术振兴会 科研费・基础研究(B)(共同研究者)
  • 2020–2022年度“生物发电微针贴片开发”,日本科学技术振兴机构 A-STEP产学共同研究(培育型)(共同研究者)
  • 2020–2021年度“通过表皮电位微创测量开拓皮肤离子医学工程”,日本学术振兴会 科研费・挑战性研究(萌芽)(共同研究者)
  • 2020–2022年度“利用单细胞级神经回路构建技术创建生物人工智能”,日本学术振兴会 科研费・基础研究(B) (项目负责人)
  • 2020年度“融合有机电子电路与水凝胶的生物测量用柔性电子器件开发”,立石科学技术振兴财团2020年度资助 (项目负责人)
  • 2017–2019年度“利用神经微板技术构建单细胞级神经回路”,日本学术振兴会 科研费・青年研究(B) (项目负责人)
  • 2016–2017年度“用于构建单细胞级神经回路的单神经细胞微板”,日本学术振兴会 科研费・研究活动启动支持 (项目负责人)
  • 2013–2015年度“构建具有单细胞级设计神经回路的三维人工脑组织”,日本学术振兴会 科研费・特别研究员奖励费 (项目负责人)

其他

经同行评审的国际会议论文、学术报告等,请参阅Researchmap。