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金属-半导体纳米复合材料中层间电荷转移的原子学解释:以银和锐钛矿为例。

Atomistic Explanation for Interlayer Charge Transfer in Metal-Semiconductor Nanocomposites: The Case of Silver and Anatase.

作者信息

Di Liberto Giovanni, Pifferi Valentina, Lo Presti Leonardo, Ceotto Michele, Falciola Luigi

机构信息

Dipartimento di Chimica, Università degli Studi di Milano , Via Golgi 19, I-20133 Milano, Italy.

Istituto di Scienze e Tecnologie Molecolari, Italian CNR , Via Golgi 19, I-20133 Milano, Italy.

出版信息

J Phys Chem Lett. 2017 Nov 2;8(21):5372-5377. doi: 10.1021/acs.jpclett.7b02555. Epub 2017 Oct 23.

Abstract

A concerted theoretical and experimental investigation of the silver/anatase hybrid nanocomposite, a very promising material for advanced sensing applications, is presented. We measure its exceptional electrochemical virtues in terms of current densities and reproducibility, providing their explanation at the atomic-scale level and demonstrating how and why silver acts as a positive electrode. Using periodic plane-wave DFT calculations, we estimate the overall amount of electron transfer toward the semiconductor side of the interface at equilibrium. Suitably designed (photo)electrochemical experiments strictly agree, both qualitatively and quantitatively, with the theoretical charge transfer estimates. The unique permanent charge separation occurring in the device is possible because of the favorable synergy of Ag and TiO, which exploits in a favorable band alignment, while the electron-hole recombination rate and carrier mobility decrease when electrons cross the metal-semiconductor interface. Finally, the hybrid material is proven to be extremely robust against aging, showing complete regeneration, even after 1 year.

摘要

本文对银/锐钛矿型混合纳米复合材料进行了理论与实验相结合的研究,该材料在先进传感应用中极具前景。我们从电流密度和重现性方面测量了其卓越的电化学性能,并在原子尺度上给出了解释,展示了银作为正极的作用方式及原因。通过周期性平面波密度泛函理论(DFT)计算,我们估算了平衡时向界面半导体一侧转移的电子总量。精心设计的(光)电化学实验在定性和定量方面都与理论电荷转移估算结果高度吻合。该器件中独特的永久性电荷分离得以实现,是因为银和二氧化钛之间存在有利的协同作用,利用了良好的能带排列,而当电子穿过金属-半导体界面时,电子-空穴复合率和载流子迁移率会降低。最后,该混合材料被证明对老化具有极强的抗性,即使在1年后也能完全再生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dae5/5672557/5fcffbf4b12c/jz-2017-02555r_0001.jpg

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