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首页> 外文期刊>Electrochimica Acta >Bio-inorganic hybrid photoanodes of photosystem II and ferricyanide-intercalated layered double hydroxide for visible-light-driven water oxidation
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Bio-inorganic hybrid photoanodes of photosystem II and ferricyanide-intercalated layered double hydroxide for visible-light-driven water oxidation

机译:光束杂交纤维的生物无机杂交光电桥和铁氰相插层双氢氧化物,用于可见光水氧化

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摘要

Photosynthesis converts solar energy into chemical energy. Photosystem II (PSII) oxidizes water to produce oxygen, electrons and protons under solar light irradiation. This light-driven water oxidation initiates a series of reactions in photosynthesis. Basic photoelectrochemical studies on PSII are directed toward the enzymatic applications of PSII for sustainable production of electricity or solar fuels. To maximize the photoelectrochemical catalytic activity of PSII on electrode substrates, interfacial designs between PSII and electrode substrates are important. Herein, we report bio-inorganic photoanodes of PSII and ferricyanide-intercalated layered double hydroxide (LDH) for visible-light-driven water oxidation. PSII is simply drop-cast onto a ferricyanide-intercalated cobalt-aluminum LDH and then shows a turnover frequency of 0.5 +/- 0.1 s(-1) and a turnover number of 920 +/- 40 for 1 h at pH 6.5 at thorn0.5 V vs. NHE under visible light irradiation. Photoelectrochemical experiments using a PSII inhibitor or a bio-engineered PSII suggest that interfacial electron transfer from the plastoquinone QA site of PSII to ferricyanide may play an important role in improving the photo-electrocatalytic activity and stability of PSII. Our studies will open up new possibilities in fundamental or advanced photoelectrochemical studies of PSII. (c) 2018 Elsevier Ltd. All rights reserved.
机译:光合作用将太阳能转化为化学能源。照相系统II(PSII)在太阳光照射下氧化水以产生氧气,电子和质子。这种光驱动的水氧化在光合作用中引发了一系列反应。 PSII的基本光电化学研究朝向PSII对可持续生产电力或太阳能燃料的酶促应用。为了使PSII的光电化学催化活性最大化在电极基板上,PSII和电极基材之间的界面设计很重要。在此,我们向可见光驱动的水氧化报告PSII和铁氰化物层间双氢氧化物(LDH)的生物无机光碳。 PSII仅仅将铁氰化物插入的钴 - 铝LDH滴下,然后显示出0.5 +/- 0.1 s(-1)的周转频率,并且在Thorn0的pH 6.5下的换档率为920 +/- 40在可见光照射下,5 V与NHE。使用PSII抑制剂或生物工程PSII的光电化学实验表明,PSII塑性醌QA位点的界面电子转移至铁氰化物可能在改善PSII光催化活性和稳定性方面发挥重要作用。我们的研究将在PSII的基本或高级光电化学研究中开辟新的可能性。 (c)2018年elestvier有限公司保留所有权利。

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