材料科学
石墨烯
塞贝克系数
热电效应
纳米技术
催化作用
热电材料
声子散射
化学工程
光电子学
复合材料
有机化学
热导率
工程类
物理
热力学
化学
作者
Siyu Wang,Yuqian Qiao,Xiangmei Liu,Shengli Zhu,Yufeng Zheng,Hui Jiang,Yu Zhang,Jie Shen,Zhaoyang Li,Yanqin Liang,Zhenduo Cui,Paul K. Chu,Shuilin Wu
标识
DOI:10.1002/adfm.202210098
摘要
Abstract Temperature variation‐induced thermoelectric catalytic efficiency of thermoelectric material is simultaneously restricted by its electrical conductivity, Seebeck coefficient, and thermal conductivity. Herein, Bi 2 Te 3 nanosheets are in situ grown on reduced graphene oxides (rGO) to generate an efficient photo‐thermoelectric catalyst (rGO‐Bi 2 Te 3 ). This system exhibits phonon scattering effect and extra carrier transport channels induced by the formed heterointerface between rGO and Bi 2 Te 3 , which improves the power factor value and reduces thermal conductivity, thus enhancing the thermoelectric performance of 2.13 times than single Bi 2 Te 3 . The photo‐thermoelectric catalysis of rGO‐Bi 2 Te 3 significantly improves the reactive oxygen species yields, resulting from the effective electron–hole separation caused by the unique thermoelectric field and heterointerfaces of rGO‐Bi 2 Te 3 . Correspondingly, the electrospinning membranes containing rGO‐Bi 2 Te 3 nanosheets exhibit high antibacterial efficiency in vivo (99.35 ± 0.29%), accelerated tissue repair ability, and excellent biosafety. This study provides an insight into heterointerface design in photo‐thermoelectric catalysis.
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