日韩福利电影在线_久久精品视频一区二区_亚洲视频资源_欧美日韩在线中文字幕_337p亚洲精品色噜噜狠狠_国产专区综合网_91欧美极品_国产二区在线播放_色欧美日韩亚洲_日本伊人午夜精品

Search

Hydrogen

Saturday
06 May 2023

New Hybrid Photocatalysts for Water Splitting With an Internal Quantum Efficiency Above 100%

06 May 2023   

As hydrogen inside fuel cells can generate electrical power, scalable methods to reliably split water into hydrogen and oxygen could have valuable implications for the energy industry. These methods could help to produce large amounts of hydrogen for more sustainable energy solutions, helping to reduce greenhouse gas emissions on Earth.

One approach to split water molecules into hydrogen and oxygen requires the use of photocatalysts, materials that can absorb light and use its energy to initiate chemical reactions. This approach essentially entails irradiating these materials with light, triggering the reaction through which water molecules become hydrogen and oxygen.

Researchers at Northwestern Polytechnical University in China recently introduced new hybrid photocatalysts that exhibit a remarkable internal quantum efficiency above 100%. These materials, introduced in a paper in Nature Energy, were found to overcome some of the shortcomings of previously proposed photocatalytic systems for water splitting processes.

"Over the past decade, researchers have made numerous attempts to achieve a solar-to-hydrogen efficiency of more than 10%, which is a competitive benchmark efficiency in the hydrogen market," Dr. Xuanhua Li, one of the researchers who carried out the study, told Tech Xplore.

"To achieve this goal, the internal quantum efficiency (the ratio of the number of incident photons absorbed to twice the amount of hydrogen produced) of the photocatalyst during the photocatalytic water splitting reaction must reach a moderately high value (ideally >100%) over a wide range of excitation wavelengths."

Several past studies have tried to devise useful strategies to improve the quantum efficiency of photocatalysts and photoelectric devices, as most previously reported efficiencies were insufficient to enable the widespread use of water splitting processes. One strategy that was found to be particularly promising leverages the so-called multiple exciton generation (MEG) effect, in which a nanocrystal quantum dot absorbs a single photon to generate multiple excitons.

"For example, one study showed that the quantum efficiency of lead-salt nanocrystals increases roughly linearly with pump-photon energy and exhibits a maximum quantum efficiency up to 700%," Dr. Li explained. "As shown in previous works, depositing the PbS quantum dots on the top of fluorine-doped tin oxide/TiO2 via a layer-by-layer approach can achieve an IQE that exceeds 100% in photoelectrochemical cells for hydrogen generation. Compared with photoelectric devices, however, demonstrations of the MEG effect are still scarce in particulate photocatalytic water splitting system due to the addition process for electric energy to hydrogen energy."

The key objective of the recent work by Dr. Li and his colleagues was to design new photocatalysts for efficient water splitting that utilize the MEG effect. Their hope was that the internal quantum efficiency of these materials would exceed 100%, making them a viable solution for the scalable production of hydrogen.

To construct these efficient photocatalysts, the researchers had to construct a strong interfacial built-in electric field and an interfacial trapping state. This would in turn provide a sufficient driving force for them to use the multiple exciton generation (MEG) effect in photocatalytic water splitting.

"We developed hybrid photocatalysts comprising CdTe quantum dots and V-doped In2S3 (CdTe/V-In2S3)," Dr. Li said. "Specifically, increasing the quantum dot size and V-dopant content leads to a downshift in the Fermi level of the CdTe quantum dots and an upshift in that of V-In2S3, resulting in an increase in the Fermi level difference and thus a 14.14 folds increase in the built-in electric field intensity at the CdTe/V-In2S3 interface. Meanwhile, an interfacial state composed of In 5s and S 3p orbitals at CdTe/V-In2S3 interface generated."

The excitation of a CdTe quantum dot in the team's photocatalyst during the photocatalytic process results in the generation of a hot electron and a hole. Driven by the materials' built-in electric field, the hot electron in the conduction band of the CdTe quantum dot is transported from CdTe to V-In2S3 and ultimately trapped at the CdTe/V-In2S3 interface, in an interfacial state made up of In 5s and S 3p orbitals.

"Unlike traditional photocatalyst, the strong built-in electric field and interfacial state at the CdTe/V-In2S3 interface slow the relaxation rate of the hot electrons, enabling hot electrons with sufficient excess energy to undergo MEG," Dr. Li said. "Ultimately, the photocatalyst exhibits an internal quantum efficiency of about 114% at an excitation wavelength of 350 nm, which to our knowledge is the highest value among reported photocatalysts for overall water splitting. Our optimization of the interfacial built-in electric field and interfacial state, paves a way for the effective utilization of MEG in photocatalytic water splitting."

In initial evaluations, the hybrid photocatalysts designed by this team of researchers achieved very promising results, exhibiting higher internal quantum efficiencies than all previously proposed photocatalysts for water splitting. In the future, this recent work could pave the way for the large-scale implementation of photocatalytic water splitting.

The design strategy presented by Dr. Li and his colleagues also opens new possibilities for the design of photocatalytic devices that operate in the MEG regime. This could soon lead to the development of additional materials and solutions with increasingly high quantum and solar-to-hydrogen efficiencies, which could further promote the use of solar energy to produce hydrogen.

"It should be noted that the photocatalytic overall water splitting ability of CdTe/V-In2S3 might be limited by the competition for light absorption between V-In2S3 and the CdTe quantum dots," Dr. Li added. "Moreover, achieving high quantum efficiency over a wide range of wavelengths is crucial to1advancing the practicality of this technology. To further advance this research, we aim to develop more efficient photocatalysts with larger built-in electric field intensities and multiple valence band interfacial states, such as by constructing a Janus structure."

In their next studies, Dr. Li and his colleagues also plan to create new non-MEG/MEG heterojunctions with a broad absorption range. By combining wavelength-complementary MEG components with non-MEG components, they hope to further improve the photocatalysts' overall performance.


More News

Loading……
精品久久久久久无| 亚洲国产精华液| 欧美女优在线| 亚洲青青一区| 久久一二三四| 亚洲最大色网站| 日韩写真福利视频在线| 欧美美女福利视频| 日产国产欧美视频一区精品| 亚洲亚洲人成综合网络| 国产色a在线| 国内精品久久久久久久影视简单 | 亚洲欧美日韩一区二区 | 亚洲欧洲专区| 91吃瓜在线观看| 麻豆传媒视频在线观看| 成人一区二区三区视频 | 国产精品久久亚洲不卡| 国产精品大片| 午夜国产精品影院在线观看| 99中文字幕一区| 日韩欧美高清| 亚洲精品第1页| 992tv免费直播在线观看| 欧美国产一级| 亚洲精品老司机| 国产三级在线免费| 欧美91大片| 婷婷夜色潮精品综合在线| 黄网站视频在线观看| 激情视频一区| 日韩欧美中文免费| 九九色在线视频| 老司机免费视频一区二区| 日韩一二三区视频| 韩国三级成人在线| 久久日韩粉嫩一区二区三区 | 草草视频在线一区二区| 91亚洲精品一区二区乱码| 中文字幕理伦片免费看| 成人嫩草影院| 色综合久久中文字幕| 欧美xo影院| 成人国产亚洲欧美成人综合网 | 高潮毛片在线观看| 亚久久调教视频| 精品福利一二区| 欧美日韩精品一区二区三区在线观看| 久久久久久久国产精品影院| 超碰在线影院| 天堂av在线一区| 黄页在线免费看| 给我免费播放日韩视频| 亚洲激情在线| 亚州成人在线电影| 一区二区三区不卡在线视频| 成人激情免费电影网址| 欧美国产免费| av中文字幕一区| 欧美综合天天夜夜久久| 色就是色亚洲色图| 免费观看性欧美大片无片| 欧美日韩亚洲视频| 一本一道dvd在线观看免费视频| 久久久久久久久久久妇女| 欧美性猛交xxxx乱大交退制版| 国产一区二区av在线| 亚洲视频一二三区| 日韩精品亚洲人成在线观看| 精品一区二区综合| 免费在线性爱视频| 日本强好片久久久久久aaa| а√最新版地址在线天堂| 欧美另类专区| 九七影院理伦片| 亚洲无线视频| 加勒比在线日本| 亚洲精品一二| а√天堂www在线а√天堂视频| 亚洲经典三级| 美臀av在线| 久久精品国产99国产| 国产1区2区3区在线| 黄网站免费久久| 日韩三级影院| 99精品视频一区| aa国产成人| 国产精品国产三级国产专播品爱网| 涩涩av在线| √…a在线天堂一区| 欧美一级做a| 色综合天天做天天爱| 国产精品片aa在线观看| 欧美一级二级在线观看| 欧美精品一线| 在线免费国产| 国产一区二区不卡| 蜜臀av在线| 亚洲人妖av一区二区| 欧美成人精品一级| 欧美日韩一区精品| 亚洲深深色噜噜狠狠爱网站| 国外av网站| 久久国产成人午夜av影院| 菠萝蜜视频国产在线播放| 国产欧美日韩三级| 精品视频一区二区三区在线观看| 色婷婷国产精品| 亚洲精品一区二区妖精| 538在线一区二区精品国产| 日韩一区精品视频| 成人午夜影院| 亚洲国产成人午夜在线一区| 涩涩视频免费网站| 日本不卡高清| 欧美精品亚洲二区| 美女网站一区| 69久久99精品久久久久婷婷| 日本欧美韩国国产| 国产精品资源网| 欧美片第1页| 欧美综合色免费| 999在线观看精品免费不卡网站| 国产黄在线观看| 国产精品美日韩| 国产成人精品三级高清久久91| 中文字幕高清20页| 国产成a人亚洲精| 国产成人免费av一区二区午夜| 91麻豆精品国产91久久久更新时间| 一区二区三区福利| 欧美黄色视屏| 色94色欧美sute亚洲线路一ni| 在线不卡亚洲| 黄色小说在线播放| 色屁屁一区二区| 久久性色av| 国产精品扒开腿做爽爽爽视频软件| 欧美色男人天堂| 日本不卡一二三区黄网| 影视一区二区三区| 日韩精品在线看片z| 国产成人免费视频精品含羞草妖精| crdy在线观看欧美| 久播影院第一理论片| 国产亚洲女人久久久久毛片| 五月国产精品| 黄色av网站在线| 亚洲va中文字幕| 午夜在线观看免费一区| 性欧美gay| 97秋霞电影网| 欧美激情一区不卡| 中文字幕免费一区二区三区| 丝袜国产在线| 欧美日韩大陆一区二区| 国产伦精品一区二区三区免费| 亚洲一区二区三区在线免费| 中文字幕免费在线| 亚洲午夜在线视频| 另类天堂av| 精品三级国产| 中文字幕在线免费专区| 一区二区三区四区中文字幕| 一本久道久久久| 日韩一区二区三区四区五区| 超碰96在线| 亚洲午夜精品网| 男女男精品视频| 激情小说一区| 一区二区三区在线免费观看| 久久久9色精品国产一区二区三区| 日韩最新av| 97人人在线视频| 一插菊花综合| 欧美精品在线观看一区二区| 日本亚洲最大的色成网站www| 亚洲欧美在线综合| 日本私人网站在线观看| 欧美日韩国产丝袜美女| 国产一区不卡在线| 先锋影音久久久| 黄色综合网站| 菠萝蜜一区二区| 欧美69视频| 中文无码久久精品| 日本不卡中文字幕| 欧美日韩中文在线观看| 婷婷国产在线| 亚洲区小说区图片区qvod| gogo大胆日本视频一区| 欧美精品vⅰdeose4hd| 欧美著名女优| 久久av网站| 国产乱码精品一区二区三区五月婷| 91老师国产黑色丝袜在线| 欧美日韩激情视频| 你懂的在线看| 精品国精品国产| 视频在线这里都是精品|