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远红碳点作为高效的光捕获剂用于增强光合作用。

Far-Red Carbon Dots as Efficient Light-Harvesting Agents for Enhanced Photosynthesis.

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, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2020 May 6;12(18):21009-21019. doi: 10.1021/acsami.9b21576. Epub 2020 Apr 21.

Abstract

Sunlight utilization by plants via the photosynthesis process is limited to the visible spectral range. How to expand the utilization spectral range via construction of a hybrid photosynthetic system is a hot topic in this field. In this work, far-red carbon dots (FR-CDs) with excellent water solubility, good biocompatibility, high quantum yield (QY), and superior stability were prepared by a one-step microwave synthesis in 3 min. The as-prepared FR-CDs is an efficient converter transferring ultraviolet A (UV-A) light to 625-800 nm far-red emission, which can be directly absorbed and utilized by chloroplasts. Due to the broader spectral utilization of solar energy and Emerson effect, increased photosynthetic activity can be achieved both in vivo and in vitro when applied for Roman lettuce. The in vitro hybrid photosynthetic system via coating chloroplasts with FR-CDs presents higher electron transfer efficiency between PS II (photosystem II) to PS I (photosystem I), which consequently increases the ATP production. The in vivo experiment further confirms that FR-CDs-treated lettuce can induce a 28.00% higher electron transfer rate compared with the control group, which results in 51.14 and 24.60% enhancement of fresh and dry weights, respectively. This work is expected to provide a way for improving the conversion efficiency from solar energy to chemical energy. (PS II) to photosystem I (PS I), which consequently increases the ATP production. The in vivo experiment further confirms that FR-CDs-treated lettuce can induce a 28.00% higher electron transfer rate compared with the control group, which results in 51.14 and 24.60% enhancement of fresh and dry weights, respectively. This work is expected to provide a way for improving the conversion efficiency from solar energy to chemical energy.

摘要

植物通过光合作用过程利用阳光的范围仅限于可见光谱。如何通过构建混合光合作用系统来扩展利用光谱范围是该领域的热门话题。在这项工作中,通过 3 分钟的一步微波合成制备了具有优异水溶性、良好生物相容性、高量子产率(QY)和卓越稳定性的远红碳点(FR-CDs)。所制备的 FR-CDs 是一种高效的转换器,可将紫外 A(UV-A)光转化为 625-800nm 远红发射,可被叶绿体直接吸收和利用。由于太阳能和 Emerson 效应的光谱利用更广泛,当应用于罗马生菜时,无论是在体内还是体外,都可以提高光合作用活性。通过用 FR-CDs 涂层包裹叶绿体来构建体外混合光合作用系统,可以提高 PS II(光合作用系统 II)到 PS I(光合作用系统 I)之间的电子转移效率,从而增加 ATP 的产生。体内实验进一步证实,与对照组相比,FR-CDs 处理的生菜可以诱导电子转移率提高 28.00%,分别使鲜重和干重增加 51.14%和 24.60%。这项工作有望为提高太阳能到化学能的转换效率提供一种途径。

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