Strategic Ni integration to study its impact on the photoluminescence and photocatalytic performances of SnO2 nanorod architecture

Prasanta Kumar Mishra, Suchismita Acharya, Amrita Palai, Sangram K. Sahu, Ankita Meher, Dojalisa Sahu
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Abstract

The sol-gel process was utilized to fabricate SnO2 nanoparticles, both in their pure form and with the addition of Ni dopants. The nanoparticles obtained were further examined to ascertain the characteristics associated with their structure, alterations in band gap, and photocatalytic performance. The insertion of nickel ions into tin sites hinders the formation of grain growth in tin oxide. The variation in the valence states and ionic radius of Sn4+ and Ni2+ ions, as revealed by X-ray diffraction (XRD) study, accounts for this disparity. FTIR measurements indicate the existence of stretching vibrations of metal-oxygen bonds that include Ni ions in the doped samples. The photoluminescence (PL) analysis reveals that the introduction of nickel doping alters the band structure of SnO2, leading to the creation of additional defect states, such as oxygen vacancies inside the crystal lattice. A study was undertaken to investigate the photocatalytic (PC) activity of SnO2 in the presence of Ni dopants. The results revealed a noticeable improvement in the efficiency of photodegradation. The degradation of Congo red (CR) dye using Ni–SnO2 nanocrystals achieves an efficiency of 94.88 % within a duration of 180 ​min. An analysis has been conducted on the impact of dye content, photocatalyst dosage, and pH on the degradation efficiency. As per the study, lower dose of Ni–SnO2 has shown better degradation efficiency in comparison to other studies. The improved performance of Ni–SnO2 can be ascribed to two main factors: the inhibition of carrier recombination due to the inclusion of defective states, and the production of hydroxyl radicals (OH•). The stability and reusability of these photocatalysts have been noted in their efficient application for environmental remediation.

Abstract Image

战略性地整合镍,研究其对二氧化锡纳米棒结构的光致发光和光催化性能的影响
利用溶胶-凝胶工艺制造出纯二氧化锡纳米粒子和添加掺杂镍的纳米粒子。对获得的纳米粒子进行了进一步研究,以确定与其结构、带隙变化和光催化性能相关的特征。镍离子插入锡位点阻碍了氧化锡晶粒的形成。X 射线衍射(XRD)研究表明,Sn4+ 和 Ni2+ 离子的价态和离子半径的变化是造成这种差异的原因。傅立叶变换红外光谱(FTIR)测量结果表明,掺杂样品中的金属氧键存在拉伸振动,其中包括镍离子。光致发光(PL)分析表明,掺入镍会改变二氧化锡的带状结构,导致产生额外的缺陷态,如晶格内的氧空位。研究人员对掺杂镍的二氧化锡的光催化(PC)活性进行了调查。研究结果表明,二氧化锡的光降解效率明显提高。使用 Ni-SnO2 纳米晶体在 180 分钟内降解刚果红(CR)染料的效率达到 94.88%。研究分析了染料含量、光催化剂用量和 pH 值对降解效率的影响。根据研究结果,与其他研究相比,较低剂量的 Ni-SnO2 具有更好的降解效率。Ni-SnO2 性能的提高可归因于两个主要因素:由于含有缺陷态而抑制了载流子的重组,以及羟基自由基(OH-)的产生。这些光催化剂的稳定性和可重复使用性已在其环境修复的有效应用中得到关注。
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