Unravelling the bioenergetics of photosynthesis at multiple length and time scales
Unravelling the bioenergetics of photosynthesis at multiple length and time scales
批准号:
2606782
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2021
资助国家:
英国
项目状态:
未结题
起止时间:
2021 至 --
中文摘要
光合作用是太阳能进入生物圈的主要途径,也是我们食物和能量的主要来源。这个重要的过程由光子吸收、光-电荷转换、电荷转移和键转换步骤的几个组合组成,每个步骤可能需要皮秒到数小时才能发生。促进这一点的是无数的纳米机械,它们动态地协同工作或级联工作,以收获阳光并将其转化为生物质的键。最近已经可以将光合机构、整个电子传递链甚至活细胞群落电化学地连接到电极。光合作用在不同长度尺度(从纳米机器到微米大小的细胞)到电极的这种(重新)布线使我们能够以令人兴奋和前所未有的方式研究,控制和利用光合作用。该项目旨在开发理解光合作用生物能量学的新方法,以便我们能够更有效地增强其用于定制目的。这涉及到新的光谱电化学和成像技术的发展,探测光合作用的生物能量学在很宽的范围内的长度和时间尺度(从纳米微米和PS天)。实现这一目标将填补长期存在的技术空白,使光合作用得到全面理解,并加速依赖光合作用的技术的进步。
英文摘要
Photosynthesis is the dominant route by which solar energy enters the biosphere, and is our primary source of food and energy. This important process is composed of several combinations of photon-absorption, light-to-charge conversion, charge transfer and bond transformation steps, each can take from pico-seconds to hours to occur. Facilitating this are a myriad of nano-machineries that work dynamically in concert or in cascades to harvest and convert sunlight into the bonds of biomass. It has recently become possible to electrochemically connect photosynthetic machineries, entire electron transport chains and even communities of living cells, electrochemically to electrodes. Such (re-)wiring of photosynthesis at different length scales (from nano-machineries to micron-sized cells) to electrodes is allowing us to study, control and exploit photosynthesis in exciting and unprecedented ways. This project aims to develop new methods of understanding the bioenergetics of photosynthesis so that we can more effectively enhance it for bespoke purposes. This involves the development of novel spectro-electrochemistry and imaging techniques for probing the bioenergetics of photosynthesis at a wide range of length and time scales (from nm-micro m and ps-days). Achieving this will fill long-standing technological gaps, enable photosynthesis to be understood wholistically, and accelerate the progress of technologies that rely on photosynthesis.
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