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[해외논문] Ultra‐Wide Range Pressure Sensor Based on a Microstructured Conductive Nanocomposite for Wearable Workout Monitoring 원문보기

Advanced healthcare materials, v.10 no.9, 2021년, pp.2001461 -   

Jeong, Yongrok (Department of Mechanical Engineering Korea Advanced Institute of Science and Technology 91, Daehak‐) ,  Gu, Jimin (ro, Yuseong‐) ,  Byun, Jaiyeul (gu Daejeon 34141 Republic of Korea) ,  Ahn, Junseong (Department of Mechanical Engineering Korea Advanced Institute of Science and Technology 91, Daehak‐) ,  Byun, Jaebum (ro, Yuseong‐) ,  Kim, Kyuyoung (gu Daejeon 34141 Republic of Korea) ,  Park, Jaeho (Bros PT Lab 4, Mannyeonnam‐) ,  Ko, Jiwoo (ro 3beon‐) ,  Jeong, Jun‐ho (gil, Seo‐) ,  Amjadi, Morteza (gu Daejeon 35200 Republic of Korea) ,  Park, Inkyu (Department of Mechanical Engineering Korea Advanced Institute of Science and Technology 91, Daehak‐)

Abstract AI-Helper 아이콘AI-Helper

AbstractConventional flexible pressure sensors are not suitable for high‐pressure applications due to their low saturation pressure. In this study, an ultra‐wide range pressure sensor is designed based on the optimized microstructure of the polyimide/carbon nanotubes (PI/CNT) nanocompo...

참고문헌 (40)

  1. Lipomi, Darren J., Vosgueritchian, Michael, Tee, Benjamin C-K., Hellstrom, Sondra L., Lee, Jennifer A., Fox, Courtney H., Bao, Zhenan. Skin-like pressure and strain sensors based on transparent elastic films of carbon nanotubes. Nature nanotechnology, vol.6, no.12, 788-792.

  2. Wang, Chuan, Hwang, David, Yu, Zhibin, Takei, Kuniharu, Park, Junwoo, Chen, Teresa, Ma, Biwu, Javey, Ali. User-interactive electronic skin for instantaneous pressure visualization. Nature materials, vol.12, no.10, 899-904.

  3. Small Tang X. 1 15 2019 

  4. Amjadi, Morteza, Sitti, Metin. Self‐Sensing Paper Actuators Based on Graphite–Carbon Nanotube Hybrid Films. Advanced science, vol.5, no.7, 1800239-.

  5. Amjadi, Morteza, Sitti, Metin. High-Performance Multiresponsive Paper Actuators. ACS nano, vol.10, no.11, 10202-10210.

  6. Thuruthel, Thomas George, Shih, Benjamin, Laschi, Cecilia, Tolley, Michael Thomas. Soft robot perception using embedded soft sensors and recurrent neural networks. Science robotics, vol.4, no.26, eaav1488-eaav1488.

  7. Boutry, Clementine M., Negre, Marc, Jorda, Mikael, Vardoulis, Orestis, Chortos, Alex, Khatib, Oussama, Bao, Zhenan. A hierarchically patterned, bioinspired e-skin able to detect the direction of applied pressure for robotics. Science robotics, vol.3, no.24, eaau6914-eaau6914.

  8. Zhong, Junwen, Ma, Yuan, Song, Yu, Zhong, Qize, Chu, Yao, Karakurt, Ilbey, Bogy, David B., Lin, Liwei. A Flexible Piezoelectret Actuator/Sensor Patch for Mechanical Human?Machine Interfaces. ACS nano, vol.13, no.6, 7107-7116.

  9. Trung, Tran Quang, Lee, Nae‐Eung. Flexible and Stretchable Physical Sensor Integrated Platforms for Wearable Human‐Activity Monitoringand Personal Healthcare. Advanced materials, vol.28, no.22, 4338-4372.

  10. Adv. Healthcare Mater. Kim K. 1 8 2019 

  11. Boutry, Clementine M., Nguyen, Amanda, Lawal, Qudus Omotayo, Chortos, Alex, Rondeau‐Gagné, Simon, Bao, Zhenan. A Sensitive and Biodegradable Pressure Sensor Array for Cardiovascular Monitoring. Advanced materials, vol.27, no.43, 6954-6961.

  12. Boutry, Clementine M., Beker, Levent, Kaizawa, Yukitoshi, Vassos, Christopher, Tran, Helen, Hinckley, Allison C., Pfattner, Raphael, Niu, Simiao, Li, Junheng, Claverie, Jean, Wang, Zhen, Chang, James, Fox, Paige M., Bao, Zhenan. Biodegradable and flexible arterial-pulse sensor for the wireless monitoring of blood flow. Nature biomedical engineering, vol.3, no.1, 47-57.

  13. Choi, Jungrak, Kwon, Donguk, Kim, Byeongsu, Kang, Kyungnam, Gu, Jimin, Jo, Jihwan, Na, Kwangmin, Ahn, Junseong, Del Orbe, Dionisio, Kim, Kyuyoung, Park, Jaeho, Shim, Jongmin, Lee, Jung-Yong, Park, Inkyu. Wearable self-powered pressure sensor by integration of piezo-transmittance microporous elastomer with organic solar cell. Nano energy, vol.74, 104749-.

  14. Mannsfeld, Stefan C. B., Tee, Benjamin C-K., Stoltenberg, Randall M., Chen, Christopher V. H-H., Barman, Soumendra, Muir, Beinn V. O., Sokolov, Anatoliy N., Reese, Colin, Bao, Zhenan. Highly sensitive flexible pressure sensors with microstructured rubber dielectric layers. Nature materials, vol.9, no.10, 859-864.

  15. Pan, Lijia, Chortos, Alex, Yu, Guihua, Wang, Yaqun, Isaacson, Scott, Allen, Ranulfo, Shi, Yi, Dauskardt, Reinhold, Bao, Zhenan. An ultra-sensitive resistive pressure sensor based on hollow-sphere microstructure induced elasticity in conducting polymer film. Nature communications, vol.5, 3002-.

  16. Choi, Jungrak, Kwon, Donguk, Kim, Kyuyoung, Park, Jaeho, Orbe, Dionisio Del, Gu, Jimin, Ahn, Junseong, Cho, Incheol, Jeong, Yongrok, Oh, Yongsuk, Park, Inkyu. Synergetic Effect of Porous Elastomer and Percolation of Carbon Nanotube Filler toward High Performance Capacitive Pressure Sensors. ACS applied materials & interfaces, vol.12, no.1, 1698-1706.

  17. Kim, Seunghwan, Amjadi, Morteza, Lee, Tae-Ik, Jeong, Yongrok, Kwon, Donguk, Kim, Min Seong, Kim, Kyuyoung, Kim, Taek-Soo, Oh, Yong Suk, Park, Inkyu. Wearable, Ultrawide-Range, and Bending-Insensitive Pressure Sensor Based on Carbon Nanotube Network-Coated Porous Elastomer Sponges for Human Interface and Healthcare Devices. ACS applied materials & interfaces, vol.11, no.26, 23639-23648.

  18. Kwon, Donguk, Lee, Tae-Ik, Shim, Jongmin, Ryu, Seunghwa, Kim, Min Seong, Kim, Seunghwan, Kim, Taek-Soo, Park, Inkyu. Highly Sensitive, Flexible, and Wearable Pressure Sensor Based on a Giant Piezocapacitive Effect of Three-Dimensional Microporous Elastomeric Dielectric Layer. ACS applied materials & interfaces, vol.8, no.26, 16922-16931.

  19. Lee, J., Park, J., Jeong, H., Shin, K.H., Lee, D.. Optimization of printing conditions for microscale multiline printing in continuous roll-to-roll gravure printing. Journal of industrial and engineering chemistry : JIEC, vol.42, 131-141.

  20. Lee, Donghwa, Kim, Jongyoun, Kim, Honggi, Heo, Hyojung, Park, Kyutae, Lee, Youngu. High-performance transparent pressure sensors based on sea-urchin shaped metal nanoparticles and polyurethane microdome arrays for real-time monitoring. Nanoscale, vol.10, no.39, 18812-18820.

  21. Chen, Lisa Y., Tee, Benjamin C. -K., Chortos, Alex L., Schwartz, Gregor, Tse, Victor, J. Lipomi, Darren, Wong, H. -S. Philip, McConnell, Michael V., Bao, Zhenan. Continuous wireless pressure monitoring and mapping with ultra-small passive sensors for health monitoring and critical care. Nature communications, vol.5, 5028-.

  22. Cho, Sung Hwan, Lee, Seung Won, Yu, Seunggun, Kim, Hyeohn, Chang, Sooho, Kang, Donyoung, Hwang, Ihn, Kang, Han Sol, Jeong, Beomjin, Kim, Eui Hyuk, Cho, Suk Man, Kim, Kang Lib, Lee, Hyungsuk, Shim, Wooyoung, Park, Cheolmin. Micropatterned Pyramidal Ionic Gels for Sensing Broad-Range Pressures with High Sensitivity. ACS applied materials & interfaces, vol.9, no.11, 10128-10135.

  23. Huang, Zhenlong, Gao, Min, Yan, Zhuocheng, Pan, Taisong, Khan, Saeed Ahmed, Zhang, Yin, Zhang, Hulin, Lin, Yuan. Pyramid microstructure with single walled carbon nanotubes for flexible and transparent micro-pressure sensor with ultra-high sensitivity. Sensors and actuators. A, Physical, vol.266, 345-351.

  24. Song, Jin Won, Kim, Jong Min, Cheong, Youn Soo, Lee, Yang-Soo, Chun, Seong Min, Min, Yu-Sun, Jung, Tae-Du. Balance Assessment in Subacute Stroke Patients Using the Balance Control Trainer (BalPro). Annals of rehabilitation medicine, vol.41, no.2, 188-196.

  25. Arienti, Chiara, Lazzarini, Stefano G., Pollock, Alex, Negrini, Stefano, Kumar, Saravana. Rehabilitation interventions for improving balance following stroke: An overview of systematic reviews. PloS one, vol.14, no.7, e0219781-.

  26. 10.1109/6144.759357 

  27. Jeong, Yongrok, Park, Jaeho, Lee, Jinwoo, Kim, Kyuyoung, Park, Inkyu. Ultrathin, Biocompatible, and Flexible Pressure Sensor with a Wide Pressure Range and Its Biomedical Application. ACS sensors, vol.5, no.2, 481-489.

  28. “Guinness World Record-Heaviest Deadlift” https://www.guinnessworldrecords.com/world‐records/heaviest‐deadlift(accessed:2020). 

  29. arXiv:1009.4322[math.MG] Chang H.‐C. 1 2010 

  30. Dupont DuPont Kapton H. N. Polyimide Film - Technical Datasheet https://www.dupont.com/content/dam/dupont/amer/us/en/products/eitransformation/documents/DEC-Kapton-HN-datasheet.pdf(accessed: Aug. 2020). 

  31. Zang, Yaping, Zhang, Fengjiao, Huang, Dazhen, Gao, Xike, Di, Chong-an, Zhu, Daoben. Flexible suspended gate organic thin-film transistors for ultra-sensitive pressure detection. Nature communications, vol.6, 6269-.

  32. O'Rourke, Michael F., Pauca, Alfredo, Jiang, Xiong‐Jing. Pulse wave analysis. British journal of clinical pharmacology, vol.51, no.6, 507-522.

  33. Prinold, Joe A.I., Bull, Anthony M.J.. Scapula kinematics of pull-up techniques: Avoiding impingement risk with training changes. Journal of science and medicine in sport, vol.19, no.8, 629-635.

  34. Hessert, Mary Josephine, Vyas, Mitul, Leach, Jason, Hu, Kun, Lipsitz, Lewis A, Novak, Vera. Foot pressure distribution during walking in young and old adults. BMC geriatrics, vol.5, 8-8.

  35. 10.1109/EMBC.2012.6347549 T.Hsieh A.Tsai C.Chang K.Ho W.Hsu T.Lin A wearable walking monitoring system for gait analysis 2012 Annual International Conference of the IEEE Engineering in Medicine and Biology Society San Diego CA USA 2012 pp.6772 doi:https://doi.org/10.1109/EMBC.2012.6347549. 

  36. Tao, Weijun, Liu, Tao, Zheng, Rencheng, Feng, Hutian. Gait Analysis Using Wearable Sensors. Sensors, vol.12, no.12, 2255-2283.

  37. 10.1093/geronj/45.6.M192 

  38. Gil, André W. O., Oliveira, Marcio R., Coelho, Vinícius A., Carvalho, Carlos E., Teixeira, Denilson C., Silva Jr, Rubens A. da. Relationship between force platform and two functional tests for measuring balance in the elderly. Revista brasileira de fisioterapia, vol.15, no.6, 429-435.

  39. Leach, Julia M., Mancini, Martina, Peterka, Robert J., Hayes, Tamara L., Horak, Fay B.. Validating and Calibrating the Nintendo Wii Balance Board to Derive Reliable Center of Pressure Measures. Sensors, vol.14, no.10, 18244-18267.

  40. Lou, Cunguang, Pang, Chenyao, Jing, Congrui, Wang, Shuo, He, Xufeng, Liu, Xiaoguang, Huang, Lei, Lin, Feng, Liu, Xiuling, Wang, Hongrui. Dynamic Balance Measurement and Quantitative Assessment Using Wearable Plantar-Pressure Insoles in a Pose-Sensed Virtual Environment. Sensors, vol.18, no.12, 4193-.

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