Acharya Lopamudra, Pattnaik Sambhu Prasad, Behera Arjun, Acharya Rashmi, Parida Kulamani
Centre for Nano Science and Nano Technology, ITER, Siksha "O" Anusandhan Deemed to be University, Bhubaneswar, Odisha 751030, India.
Inorg Chem. 2021 Apr 5;60(7):5021-5033. doi: 10.1021/acs.inorgchem.1c00062. Epub 2021 Mar 19.
A series of 2D/2D exfoliated boron nitride/exfoliated g-CN nanocomposites denoted as e-BN/e-CN have been successfully prepared using a simple in situ technique. The successful deposition of e-BN on e-CN was confirmed from high-resolution transmission electron microscopy analysis. According to electrochemical measurements, 1.5 wt % e-BN/e-CN nanocomposites showed 1.5 times more photocurrent than e-CN, which indicates the successful formation of an e-BN/e-CN heterostructure. The photocatalytic activities of the e-CN and e-BN/e-CN composites were investigated through photocatalytic tetracycline hydrochloride (TCH) degradation and H evolution under visible light illumination. The 1.5 wt % e-BN/e-CN composite demonstrated the highest photocatalytic activities, which are about 21 and 1.5 fold greater than e-CN towards H generation with an apparent conversion efficiency of 2.34% and TCH degradation, respectively. The improved photocatalytic activities of e-BN/e-CN photocatalysts were ascribed to the augmented light-harvesting ability and enhanced separation efficiency of charge carriers. Lower photoluminescence intensity and a smaller arc value in the impedance spectra again proved the reduced recombination of the e-h pairs in the e-BN/e-CN nanocomposites. Trapping experiments show that O, h, and OH radicals are the predominant reactive species that accelerated the photocatalytic activities of e-BN/e-CN composites. This study opens up a new window towards the fabrication of such 2D/2D nanocomposites in the field of photocatalysis.
通过一种简单的原位技术,成功制备了一系列二维/二维剥离氮化硼/剥离石墨相氮化碳纳米复合材料,记为e-BN/e-CN。高分辨率透射电子显微镜分析证实了e-BN在e-CN上的成功沉积。根据电化学测量,1.5 wt%的e-BN/e-CN纳米复合材料的光电流比e-CN高1.5倍,这表明成功形成了e-BN/e-CN异质结构。通过光催化降解盐酸四环素(TCH)和在可见光照射下析氢,研究了e-CN和e-BN/e-CN复合材料的光催化活性。1.5 wt%的e-BN/e-CN复合材料表现出最高的光催化活性,其析氢和TCH降解活性分别比e-CN高约21倍和1.5倍,表观转化效率分别为2.34%。e-BN/e-CN光催化剂光催化活性的提高归因于光捕获能力的增强和电荷载流子分离效率的提高。较低的光致发光强度和阻抗谱中较小的弧值再次证明了e-BN/e-CN纳米复合材料中电子-空穴对复合的减少。捕获实验表明,O、h和OH自由基是加速e-BN/e-CN复合材料光催化活性的主要活性物种。这项研究为光催化领域中此类二维/二维纳米复合材料的制备开辟了一个新窗口。