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用于可持续和可生物降解的摩擦电发电的工程化和激光处理壳聚糖生物聚合物。

Engineered and Laser-Processed Chitosan Biopolymers for Sustainable and Biodegradable Triboelectric Power Generation.

机构信息

School of Industrial Engineering, Purdue University, West Lafayette, IN, 47097, USA.

School of Mechanical Engineering, Purdue University, West Lafayette, IN, 47907, USA.

出版信息

Adv Mater. 2018 Mar;30(11). doi: 10.1002/adma.201706267. Epub 2018 Jan 19.

Abstract

Recent advances achieved in triboelectric nanogenerators (TENG) focus on boosting power generation and conversion efficiency. Nevertheless, obstacles concerning economical and biocompatible utilization of TENGs continue to prevail. Being an abundant natural biopolymer from marine crustacean shells, chitosan enables exciting opportunities for low-cost, biodegradable TENG applications in related fields. Here, the development of biodegradable and flexible TENGs based on chitosan is presented for the first time. The physical and chemical properties of the chitosan nanocomposites are systematically studied and engineered for optimized triboelectric power generation, transforming the otherwise wasted natural materials into functional energy devices. The feasibility of laser processing of constituent materials is further explored for the first time for engineering the TENG performance. The laser treatment of biopolymer films offers a potentially promising scheme for surface engineering in polymer-based TENGs. The chitosan-based TENGs present efficient energy conversion performance and tunable biodegradation rate. Such a new class of TENGs derived from natural biomaterials may pave the way toward the economically viable and ecologically friendly production of flexible TENGs for self-powered nanosystems in biomedical and environmental applications.

摘要

近年来,摩擦纳米发电机(TENG)的研究重点主要集中在提高其发电和能量转换效率上。然而,TENG 在经济和生物兼容性方面的应用仍然存在障碍。壳聚糖是一种丰富的天然海洋甲壳类生物高分子聚合物,为低成本、可生物降解的 TENG 在相关领域的应用提供了令人兴奋的机会。本文首次提出了基于壳聚糖的可生物降解和柔性 TENG 的发展。系统研究和设计了壳聚糖纳米复合材料的物理化学性质,以优化摩擦发电性能,将原本浪费的天然材料转化为功能性能源设备。本文还首次探索了组成材料的激光处理对于 TENG 性能工程的可行性。生物聚合物薄膜的激光处理为聚合物基 TENG 的表面工程提供了一种很有前途的方案。基于壳聚糖的 TENG 具有高效的能量转换性能和可调的生物降解速率。这种源自天然生物材料的新型 TENG 可能为自供电纳米系统在生物医学和环境应用中的柔性 TENG 的经济可行和生态友好生产铺平道路。

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