Reddy C Venkata, Reddy Kakarla Raghava, Zairov Rustem R, Cheolho Bai, Shim Jaesool, Aminabhavi Tejraj M
School of Mechanical Engineering, Yeungnam University, Gyeongsan, 712749, South Korea.
School of Chemical and Biomolecular Engineering, The University of Sydney, NSW, 2006, Australia.
J Environ Manage. 2022 Aug 1;315:115120. doi: 10.1016/j.jenvman.2022.115120. Epub 2022 Apr 28.
Novel g-CN functionalized yttrium-doped ZrO hybrid heterostructured (g-YZr) nanoparticles have been synthesized to investigate photocatalytic Cr(VI) reduction as well as electrochemical energy storage applications. The nanoparticles have been characterized to examine their structural, optical, and photocatalytic properties. XRD confirmed the incorporation of dopant ions and heterostructure development between g-CN and doped ZrO. When g-CN was doped with ZrO the ability of light adsorption was greatly enhanced due to the narrow band gap. The distinctive structure of g-YZr exhibited outstanding photocatalytic Cr(VI) reduction owing to its superior surface area, which greatly prevented the charge carriers' recombination rate and exhibited superior photocatalytic performance within 90 min of solar light irradiation. Furthermore, these catalysts demonstrated similar catalytic Cr(VI) reduction activity following four repeatability tests, indicating the exceptional structural stability of g-YZr catalysts. The electrochemical performance of the electrodes revealed that g-YZr exhibited superior specific capacitance over the other electrodes owing to extra energetic sites and robust synergic effect. Enhanced specific capacitance and long cyclic stability of the hybrid heterostructures displayed their usefulness for energy storage applications.
新型石墨相氮化碳(g-CN)功能化钇掺杂氧化锆(ZrO)混合异质结构(g-YZr)纳米颗粒已被合成,用于研究光催化还原六价铬(Cr(VI))以及电化学储能应用。对这些纳米颗粒进行了表征,以研究其结构、光学和光催化性能。X射线衍射(XRD)证实了掺杂离子的掺入以及g-CN与掺杂ZrO之间异质结构的形成。当g-CN与ZrO掺杂时,由于带隙变窄,光吸附能力大大增强。g-YZr独特的结构由于其优异的表面积而表现出出色的光催化还原Cr(VI)性能,这极大地阻止了电荷载流子的复合率,并在太阳光照射90分钟内表现出优异的光催化性能。此外,经过四次重复性测试后,这些催化剂表现出相似的催化还原Cr(VI)活性,表明g-YZr催化剂具有出色的结构稳定性。电极的电化学性能表明,由于额外的活性位点和强大的协同效应,g-YZr比其他电极表现出更高的比电容。混合异质结构增强的比电容和长循环稳定性显示了它们在储能应用中的实用性。