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Prospects for conversion of solar energy into chemical fuels: the concept of a solar fuels industry

机译:太阳能转化为化学燃料的前景:太阳能产业的概念

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There is, at present, no solar fuels industry anywhere in the world despite the well-publicized needs to replace our depleting stock of fossil fuels with renewable energy sources. Many obstacles have to be overcome in order to store sunlight in the form of chemical potential, and there are severe barriers to surmount in order to produce energy on a massive scale, at a modest price and in a convenient form. It is also essential to allow for the intermittent nature of sunlight, its diffusiveness and variability and to cope with the obvious need to use large surface areas for light collection. Nonetheless, we have no alternative but to devise viable strategies for storage of sunlight as biomass or chemical feedstock. Simple alternatives, such as solar heating, are attractive in terms of quick demonstrations but are not the answer. Photoelectrochemical devices might serve as the necessary machinery by which to generate electronic charge but the main problem is to couple these charges to the multi-electron catalysis needed to drive energystoring chemical reactions. Several potential fuels (CO, H_2, HCOOH, NH_3, O_2, speciality organics, etc.) are possible, but the photochemical reduction of CO_2 deserves particular mention because of ever-growing concerns about overproduction of greenhouse gases. The prospects for achieving these reactions under ambient conditions are considered herein.
机译:尽管众所周知,需要用可再生能源替代我们正在消耗的矿物燃料,但目前世界上没有太阳能产业。为了以化学势的形式存储阳光,必须克服许多障碍,并且要克服这些障碍,必须以适中的价格和方便的方式大规模生产能源。还必须考虑到阳光的间歇性,扩散性和可变性,以及应对使用大表面积收集光的明显需求。尽管如此,我们别无选择,只能设计可行的策略来存储日光作为生物质或化学原料。就快速演示而言,诸如太阳能供暖之类的简单替代方法很有吸引力,但并非解决之道。光电化学装置可能是产生电子电荷的必要机制,但主要问题是将这些电荷耦合到驱动能量存储化学反应所需的多电子催化作用。几种可能的燃料(CO,H_2,HCOOH,NH_3,O_2,特种有机物等)是可能的,但是由于对温室气体超量生产的担忧日益增加,因此特别值得一提的是CO_2的光化学还原。本文考虑了在环境条件下实现这些反应的前景。

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