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吡啶氮掺杂碳点为小球藻提供电子以提高其光合作用和胞外电子传递。

Pyridinic Nitrogen Doped Carbon Dots Supply Electrons to Improve Photosynthesis and Extracellular Electron Transfer of Chlorella pyrenoidosa.

机构信息

Key Laboratory for Biobased Materials and Energy of Ministry of Education, College of Materials and Energy, South China Agricultural University, Guangzhou, 510642, China.

Institute of Urban Agriculture, Chinese Academy of Agricultural Science, Chengdu, 610218, China.

出版信息

Small. 2023 Aug;19(31):e2206222. doi: 10.1002/smll.202206222. Epub 2023 Mar 12.

Abstract

Optimizing photosynthesis is imperative for providing energy and organics for all life on the earth. Here, carbon dots doped with pyridinic nitrogen (named lev-CDs) are synthesized by the one-pot hydrothermal method, and the structure-function relationship between functional groups on lev-CDs and photosynthesis of Chlorella pyrenoidosa (C. pyrenoidosa) is proposed. Pyridinic nitrogen plays a key role in the positive effect on photosynthesis caused by lev-CDs. In detail, lev-CDs act as electron donors to supply photo-induced electrons to P680 and QA , causing electron transfer from lev-CDs to the photosynthetic electron transport chain in the photosystems. In return, the recombination efficiency of electron-hole pairs on lev-CDs decreases. As a result, the electron transfer rate in the electron transport chain, the activity of photosystem II, and the Calvin cycle are enhanced. Moreover, the electron transfer rate between C. pyrenoidosa and external circumstances enhanced by lev-CDs is about 50%, and electrons exported from C. pyrenoidosa can be used to reduce iron(III). This study is of great significance for engineering nanomaterials to improve photosynthesis.

摘要

优化光合作用对于为地球上所有生命提供能量和有机物至关重要。在这里,通过一锅水热法合成了掺杂吡啶氮的碳点(命名为 lev-CDs),并提出了 lev-CDs 上的官能团与栅藻(Chlorella pyrenoidosa,C. pyrenoidosa)光合作用之间的结构-功能关系。吡啶氮在 lev-CDs 对光合作用的积极影响中起着关键作用。具体而言,lev-CDs 作为电子供体为 P680 和 QA 提供光诱导电子,导致电子从 lev-CDs 转移到光系统中的光合作用电子传递链。作为回报,lev-CDs 上电子空穴对的复合效率降低。结果,电子传递链中的电子转移速率、光系统 II 的活性和卡尔文循环得到增强。此外,lev-CDs 增强的栅藻与外部环境之间的电子转移速率约为 50%,并且栅藻输出的电子可以用于还原铁(III)。这项研究对于工程纳米材料以提高光合作用具有重要意义。

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