材料科学
纳米技术
纳米材料
光伏系统
异质结
光电效应
生物医学工程
光电子学
医学
电气工程
工程类
作者
Zi Qiao,Jie Ding,Chengheng Wu,Ting Zhou,Kai Wu,Yusheng Zhang,Zhanwen Xiao,Dan Wei,Jing Sun,Hongsong Fan
出处
期刊:Small
[Wiley]
日期:2022-12-04
卷期号:19 (7)
被引量:10
标识
DOI:10.1002/smll.202206231
摘要
Abstract The past decades have witnessed the rational design of novel functional nanomaterials and the potential to revolutionize many applications. With the increasing focus on electronic biological processes, novel photovoltaic nanomaterials are highly expectable for empowering new therapeutic strategies such as establishing a link between endogenous electric field (EEF) and electrotherapy. Compared to traditional invasive stimulation, the light‐initiating strategy has the advantages of non‐invasion, non‐power supply, and precise controllability. Whereas, common photoactivated materials require short‐wavelength light excitation accompanied by poor tissue penetration and biohazard. Herein, by the construction of p‐n heterostructured Bi 2 S 3 /TiO 2 /rGO (BTG) nanoparticles, broadener light absorption and higher light conversion than regular UV excitation are realized. Simultaneously, the photoelectric performance of BTG heterostructure, as well as the synergistic effect of Bi 2 S 3 morphology, are revealed. Besides, the rationally designed biomimetic hydrogel matrix consisting of collagen and hyaluronic acid provides appropriate bioactivity, interface adhesion, mechanical matching, and electron transfer. Therefore, the photovoltaic BTG‐loaded matrix provides a platform of light‐driven electrical stimulation, coupling the EEF to modulate the electrophysiological and regeneration microenvironment. The implementation of photoelectric stimulation holds broad prospects for non‐drug therapy and electrical‐related biological process modulation including osseointegration, nerve regeneration, electronic skin, and wound healing.
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