Sujoy Kumar Ghosh, Subhajit Pal, Krittish Roy, Wei Yue, Yuan Gao, Fan Xia, Peisheng He, Sabyasachi Sarkar, Megan Teng, Jongha Park, Peggy Tsao, Xiaosa Li, Syed A. M. Tofail, Phillip B. Messersmith, Liwei Lin
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引用次数: 0
摘要
同时具有可治愈性、可拉伸性和可降解性的压电材料仍然是一个未解决的挑战,限制了可穿戴和植入式电子产品的发展,其中设备面临多维机械变形,导致损坏的风险。为了解决这一关键问题,研究人员开发了一种生物相容性压电材料,该材料具有可拉伸、可愈合和可降解的dl -丙氨酸氨基酸晶体,具有超高的压电效应。在离子交联明胶水凝胶基质中原位生长dl -丙氨酸压电晶体,其超高电压系数为1.6 Vm N-1,增强了压电性能。压电离子特性和晶体对准的结合导致创纪录的57.6 pm2 N-1的能量收集性能值,在概念验证设备中提供出色的毫瓦级功率输出,甚至可以为几个电灯泡供电。弹性可拉伸,抗损伤应变传感器进一步优化实时医疗监测和生物力学运动跟踪。通过集成机器学习算法,传感系统可以智能地对生物力学活动进行高精度分类,从而在医疗保健、康复和运动监测方面实现先进的应用。
Highly Responsive Self-Healing and Degradable Piezoelectric Soft Machines
Piezoelectric materials that are simultaneously healable, stretchable, and degradable have remained an unmet challenge, limiting advancements in wearable and implantable electronics, where devices face multidimensional mechanical deformation, causing a risk of damage. To address this critical gap, a biocompatible piezoelectric material is developed for ultrahigh piezoelectric effects with DL-alanine amino acid crystals, which is stretchable, healable, and degradable. The in situ grown DL-alanine piezoelectric crystals within an ionically cross-linked gelatin hydrogel matrix strengthen the piezoelectric properties with an ultrahigh voltage coefficient of 1.6 Vm N−1. The combination of the piezo-ionic property and crystal alignment results in a record-breaking energy harvesting figure-of-merit value at 57.6 pm2 N−1 to deliver outstanding mili-watt level power outputs in proof-of-concept devices which can power up even several electric light bulbs. An elastically stretchable, damage resistant strain sensor is further optimized for real-time healthcare monitoring and biomechanical motion tracking. By integrating machine learning algorithms, the sensing system intelligently classifies biomechanical activities with high accuracy, enabling advanced applications in healthcare, rehabilitation, and sports monitoring.
期刊介绍:
Advanced Materials, one of the world's most prestigious journals and the foundation of the Advanced portfolio, is the home of choice for best-in-class materials science for more than 30 years. Following this fast-growing and interdisciplinary field, we are considering and publishing the most important discoveries on any and all materials from materials scientists, chemists, physicists, engineers as well as health and life scientists and bringing you the latest results and trends in modern materials-related research every week.