材料科学
抗坏血酸
纳米棒
压电
电催化剂
纤锌矿晶体结构
催化作用
锌
纳米技术
纳米结构
电极
电化学
冶金
复合材料
化学
物理化学
生物化学
食品科学
作者
Nianzu Liu,Ruoxing Wang,Shengjie Gao,Ruifang Zhang,Feng Ru Fan,Yihui Ma,Xiliang Luo,Dong Ding,Wenzhuo Wu
标识
DOI:10.1002/adma.202105697
摘要
Nanostructured piezoelectric semiconductors offer unprecedented opportunities for high-performance sensing in numerous catalytic processes of biomedical, pharmaceutical, and agricultural interests, leveraging piezocatalysis that enhances the catalytic efficiency with the strain-induced piezoelectric field. Here, a cost-efficient, high-performance piezo-electrocatalytic sensor for detecting l-ascorbic acid (AA), a critical chemical for many organisms, metabolic processes, and medical treatments, is designed and demonstrated. Zinc oxide (ZnO) nanorods and nanosheets are prepared to characterize and compare their efficacy for the piezo-electrocatalysis of AA. The electrocatalytic efficacy of AA is significantly boosted by the piezoelectric polarization induced in the nanostructured semiconducting ZnO catalysts. The charge transfer between the strained ZnO nanostructures and AA is elucidated to reveal the mechanism for the related piezo-electrocatalytic process. The low-temperature synthesis of high-quality ZnO nanostructures allows low-cost, scalable production, and integration directly into wearable electrocatalytic sensors whose performance can be boosted by otherwise wasted mechanical energy from the working environment, for example, human-generated mechanical signals.
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