AG百家乐大转轮-AG百家乐导航_怎么看百家乐走势_全讯网官网 (中国)·官方网站

Perovskite quantum dots boost artificial photosynthesis

Share
  • Updated: May 2, 2017
  • Written:
  • Edited:
Source: https://www.chemistryworld.com/news/perovskite-quantum-dots-boost-artificial-photosynthesis/3007196.article
BY FERNANDO GOMOLLóN-BEL

Perovskite and graphene oxide combined to enhance photocatalytic reduction of carbon dioxide

Source: (c) ACS
A composite material made of perovskite quantum dots and graphene oxide was used as a photocatalyst for carbon dioxide reduction
 
A composite of perovskite quantum dots and graphene oxide that reduces CO2 when stimulated with light has been developed by researchers in China. It is the first known example of artificial photosynthesis based on perovskite quantum dots.

'Halide perovskites […] achieved an amazing efficiency of 22.1% in a few years. Inspired by such rapid development, […] we thought the same materials could be competent for high-performance photocatalysis,’ explains Dai-Bin Kuang of Sun Yat-sen University in Guangzhou.

Kuang and colleagues prepared quantum dots – semiconductor nanoparticles – of a highly stable cesium–lead halide perovskite, as well as a composite material made of these quantum dots and graphene oxide. Both materials showed an efficient absorption of visible light and strong luminescence. The team used these products to achieve a fundamental step in artificial photosynthesis – the reduction of CO2. To simulate sunlight, they used a xenon lamp with an appropriate filter.

Perovskite quantum dot photocatalysts surpassed the efficiency of cadmium sulfide and other state-of-the-art materials in the conversion of CO2 to carbon monoxide and methane. Chemists also demonstrated the synergetic effect of the composite – when combined to graphene oxide, perovskite QDs achieved photocatalytic performances 26% higher than QDs alone. According to Kuang, graphene oxide boosts the efficiency of the QDs ‘improving the charge separation and transportation.’

Emilio Palomares, an expert in solar cells working at the Institute of Chemical Research of Catalonia, Spain, says: ‘Kuang’s idea is brilliant, they go beyond the classic uses of perovskites and develop a whole new application.’ He adds that the combination of quantum dots with graphene oxide is a good choice. ‘Together, these two materials separate charges for a longer time, thus favouring catalytic mechanisms.’ He predicts that ‘researchers will soon come up with new synergies to enhance the power of quantum dots’.

Kuang says he and his co-workers are already testing alternatives to graphene oxide. ‘Support materials have great influence on the charge transport behaviour and the light harvesting efficiency of the photocatalyst. […] We have [also] used carbon based materials – like carbon nanotubes – and metal oxides – like TiO2 – to create a series of newly designed composite photocatalysts,’ he says.

Although very efficient, most halide perovskites have a major drawback – lead contamination. ‘The environmental concerns on lead halide perovskites are unquestionable,’ Kuang remarks. His team is testing the properties of lead-free alternatives bearing cesium, silver and bismuth. ‘Fortunately, we screened some ideal candidates,’ he says. ‘And we are currently investigating their potential photocatalytic applications.’

References
Y-F Xu et al, J. Am. Chem. Soc. 2017, DOI: 10.1021/jacs.7b00489
TOP
连山| 加多宝百家乐的玩法技巧和规则| 百家乐筹码真伪| 金钱豹百家乐的玩法技巧和规则| 免费百家乐官网规则| 做生意摆放什么会招财| 大发888官方下载 银行| 运城百家乐官网的玩法技巧和规则 | 百家乐官网赌博千术| 太子百家乐娱乐城| 百家乐官网的嬴钱法| 百家乐模拟游戏下载| 大发888网页游戏| 免费下百家乐官网赌博软件 | 香港六合彩报码| 凉城县| 百家乐发脾机| 阿拉善左旗| 百家乐官网波音独家注册送彩| 银河国际娱乐| 哪家百家乐官网优惠最好且信誉不错| 百家乐游戏机路法| 百家乐开发| 百家乐如何打轮盘| 百家乐官网翻天腾讯视频| 邯郸百家乐园真钱区| 财神娱乐城怎么样| 皇冠网百家乐官网阿| 飞7棋牌游戏| 百家乐官网园zyylc| 龙博百家乐的玩法技巧和规则| 百家乐官网筹码14克粘土| 百家乐官网三号的赢法| 大发888问题缺少组件| 百家乐技巧何为百家乐之路| 精通百家乐官网的玩法技巧和规则| 湖南省| 百家乐博弈指数| 大上海百家乐官网的玩法技巧和规则| 皇冠网投| 顶级赌场371betcwm|