Jiang Wenxuan, Wei Wei, Yuan Tinglian, Liu Shasha, Niu Ben, Wang Hui, Wang Wei
State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University 210023 China
Chem Sci. 2021 May 13;12(24):8556-8562. doi: 10.1039/d1sc01623g.
The inevitable microstructural defects, including cracks, grain boundaries and cavities, make a portion of the material inaccessible to electrons and ions, becoming the incentives for electrochemically inactive zones in single entity. Herein, we introduced dark field microscopy to study the variation of scattering spectrum and optical mass centroid (OMC) of single Prussian blue nanoparticles during electrochemical reaction. The "dark zone" embedded in a single electroactive nanoparticle resulted in the incomplete reaction, and consequently led to the misalignment of OMC for different electrochemical intermediate states. We further revealed the dark zones such as lattice defects in the same entity, which were externally manifested as the fixed pathway for OMC for the migration of potassium ions. This method opens up enormous potentiality to optically access the heterogeneous intraparticle dark zones, with implications for evaluating the crystallinity and electrochemical recyclability of single electroactive nano-objects.
不可避免的微观结构缺陷,包括裂纹、晶界和空洞,使得材料的一部分区域电子和离子无法到达,成为单个实体中电化学惰性区域的诱因。在此,我们引入暗场显微镜来研究单个普鲁士蓝纳米颗粒在电化学反应过程中的散射光谱和光学质量中心(OMC)的变化。单个电活性纳米颗粒中嵌入的“暗区”导致反应不完全,进而导致不同电化学中间状态下OMC的错位。我们进一步揭示了同一实体中的晶格缺陷等暗区,这些暗区在外部表现为钾离子迁移的OMC固定路径。该方法为光学访问颗粒内异质暗区开辟了巨大潜力,对评估单个电活性纳米物体的结晶度和电化学可回收性具有重要意义。