澳门赌场招聘-赌场有哪些_免费百家乐追号软件_全讯网最新资讯网址 (中国)·官方网站

Research News

Prof. Gangfeng Ouyang’s group at School of Chemistry made important achievements in the field of advanced oxidation processes: An unprecedented non-photo mediated hole (h+) oxidation system

Source: School of Chemistry
Edited by: Tan Rongyu, Wang Dongmei

Photoinduced holes (h+) generated on heterogeneous catalysts could serve as critical active oxidative species in splendid applications, including green energy exploration, chemical synthesis and environmental technology. As the core of photocatalytic activities, the electron-hole separation, transfer and recombination often take place in an ultrasmall timescale from tens of fs to hundreds of ps, which result in the low utilization of photoexcited electrons and holes. For decades, tremendous efforts have been made to increase the separation efficiency of photoexcited electron-hole pairs, via facet/defect engineering or heterojunction construction on the catalysts. Even so, still a majority of carriers are consumed by charge recombination prior to surface reactions.

Inspired by the researches of sensing field, a research team led by Professor Gangfeng Ouyang of the School of Chemistry at Sun Yat-sen University proposed a facile strategy-utilizing defective carbon nanotubes (CNTs) and strong electron-accepting superoxides to fabricate holes with high oxidative capacity and long lifetime. This is the first time to construct a non-photo mediated hole oxidation system, which exhibited striking catalytic performances for the degradation of organic pollutants, much higher than those of reported photocatalysts. This work provides new ideas for the construction of systems with long-lived carriers.


Figure 1. Functional principles of electron transfer in (a) light-induced photocatalytic system; (b) Proposed non-photo mediated hole catalytic system.

A deep study revealed that the intrinsic defects with unpaired spins on CNTs served as adsorptive sites to activate superoxides. Moreover, theoretical results demonstrated that the redox potential of this system could be tuned by proper defect construction on CNTs, rendering it significantly outperformed the classical oxidation processes for selective target pollutants elimination in actual wastewater. Furthermore, the defective CNTs were fabricated in-situ into membranes, which could treat the organic pollutants in a continuous flow mode.


Figure 2. Characterization of defective CNTs and catalytic performance of the CNT/PS system for organic pollutants degradation.


Figure 3. Membrane fabricated in-situ and wastewater treatment in a continuous flow system.

The research work has been published in ACS Central Science entitled “Unprecedented Nonphotomediated Hole (h+) Oxidation System Constructed from Defective Carbon Nanotubes and Superoxides”.

The first author is Dr. Junhui Wang, School of Chemistry, Sun Yat-sen University. Professor Gangfeng Ouyang (Sun Yat-sen University) is the corresponding author. This work was supported by the Key Program of National Natural Science Foundation of China, Guangdong Provincial Key R&D Programme, the NSF of Guangdong Province and the Fundamental Research Funds for the Central Universities.

Link to the paper: https://pubs.acs.org/doi/10.1021/acscentsci.0c01600
百家乐官网棋牌交友| 大发888娱乐城casinolm0| 3U百家乐游戏| 澳门百家乐官网娱乐注册| 龙虎斗游戏| 卓达太阳城希望之洲| 百家乐趋势图怎么看| 百家乐会骗人吗| 帝王百家乐官网的玩法技巧和规则| 去澳门百家乐官网娱乐城| 百家乐官网哪条路好| 皇冠在线娱乐城| 大发888xp缺少casino| 百家乐怎么才会赢| 电子百家乐官网假在线哪| 百家乐官网21点德州扑克| 南召县| 大赢家| 博彩旅游业| 六合彩最快开奖| 博雅德州扑克网页版| 威尼斯人娱乐备用622 | 吉利百家乐官网的玩法技巧和规则 | 百家乐官网攻略投注法| 肥东县| 足球平台开户| 星空棋牌下载| 大发888娱乐城主页| 大发888相关资讯| 澳门百家乐心| 百家乐正式版| 百家乐计划工具| 大发888二十一点| 平台百家乐官网的区别| 百家乐官网注册下注平台| 至尊百家乐官网娱乐平台| 百家乐官网公式软件| 老人头百家乐官网的玩法技巧和规则| 什么是百家乐官网平注法| 同花顺百家乐官网娱乐城| 百家乐网上最好网站|