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通过超快连续电化学沉积制备用于光伏应用的复合硫化镉薄膜/二氧化钛纳米管结构。

A composite CdS thin film/TiO2 nanotube structure by ultrafast successive electrochemical deposition toward photovoltaic application.

作者信息

Fu Han, Liu Hong, Shen Wenzhong

机构信息

Department of Physics, Shanghai Jiao Tong University, 800 Dong Chuan Road, Shanghai 200240, People's Republic of China.

出版信息

Nanoscale Res Lett. 2014 Nov 25;9(1):631. doi: 10.1186/1556-276X-9-631. eCollection 2014.

Abstract

Fabricating functional compounds on substrates with complicated morphology has been an important topic in material science and technology, which remains a challenging issue to simultaneously achieve a high growth rate for a complex nanostructure with simple controlling factors. Here, we present a novel simple and successive method based on chemical reactions in an open reaction system manipulated by an electric field. A uniform CdS/TiO2 composite tubular structure has been fabricated in highly ordered TiO2 nanotube arrays in a very short time period (~90 s) under room temperature (RT). The content of CdS in the resultant and its crystalline structure was tuned by the form and magnitude of external voltage. The as-formed structure has shown a quite broad and bulk-like light absorption spectrum with the absorption of photon energy even below that of the bulk CdS. The as-fabricated-sensitized solar cell based on this composite structure has achieved an efficiency of 1.43% without any chemical doping or co-sensitizing, 210% higher than quantum dot-sensitized solar cell (QDSSC) under a similar condition. Hopefully, this method can also easily grow nanostructures based on a wide range of compound materials for energy science and electronic technologies, especially for fast-deploying devices.

摘要

在具有复杂形态的基底上制备功能化合物一直是材料科学与技术领域的一个重要课题,要通过简单的控制因素同时实现复杂纳米结构的高生长速率仍然是一个具有挑战性的问题。在此,我们提出了一种基于开放反应体系中化学反应的新颖、简单且连续的方法,该反应体系由电场操控。在室温下,在极短的时间内(约90秒),在高度有序的二氧化钛纳米管阵列中制备出了均匀的硫化镉/二氧化钛复合管状结构。通过外部电压的形式和大小来调节所得产物中硫化镉的含量及其晶体结构。所形成的结构展现出相当宽的类似体相的光吸收光谱,其光子能量吸收甚至低于体相硫化镉。基于这种复合结构制备的敏化太阳能电池在没有任何化学掺杂或共敏化的情况下实现了1.43%的效率,比在类似条件下的量子点敏化太阳能电池(QDSSC)高出210%。有望地,这种方法还能够轻松地生长基于多种复合材料的纳米结构,用于能源科学和电子技术,特别是对于快速部署的器件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d56/4266500/b50d780b9dd0/1556-276X-9-631-1.jpg

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