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电喷雾类囊体-海藻酸钠薄膜在微柱电极上用于可扩展的光合能量收集。

Electrosprayed Thylakoid-Alginate Film on a Micro-Pillar Electrode for Scalable Photosynthetic Energy Harvesting.

机构信息

Department of Mechanical Engineering, Yonsei University, Yonsei-ro 50, Seodaemun-gu, Seoul 03722, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2020 Dec 9;12(49):54683-54693. doi: 10.1021/acsami.0c15993. Epub 2020 Nov 23.

DOI:10.1021/acsami.0c15993
PMID:33226773
Abstract

Direct harvesting of electricity from photosynthesis is highly desired as an eco-friendly and sustainable energy harvesting technology. Photosynthetic apparatuses isolated from plants, such as thylakoid membranes (TMs), are deposited on an electrode by which photosynthetic electrons (PEs) are collected from water splitting. To enhance PE collection efficiency, it is critical to increase the electrochemical interfaces between TMs and the electrode. Considering the size of TMs to be around a few hundred nanometer, we hypothesize that an array of micropillar-shaped (MP) electrode can maximize the TM/electrode interface area. Thus, we developed MP electrodes with different heights and investigated the electrospraying of TM-alginate mixtures to fill the gaps between MPs uniformly and conformally. The uniformity of the TM-alginate film and the interaction between the TM and the MP electrode were evaluated to understand how the MP heights and film quality influenced the magnitude of the PE currents. PE currents increased up to 2.4 times for an MP electrode with an A/R of 1.8 compared to a flat electrode, indicating increased direct contact interface between TMs and the electrode. Furthermore, to demonstrate the scalability of this approach, an array of replicated SU-8 MP electrodes was prepared and PE currents of up to 3.2 μA were monitored without a mediator under 68 mW/cm. Finally, the PE current harvesting was sustained for 14 days without decay, demonstrating the long-term stability of the TM-alginate biophotoanodes.

摘要

直接从光合作用中获取电能是一种环保且可持续的能量收集技术,因此备受期待。从植物中分离出的光合装置,如类囊体膜(TMs),通过电极收集水分解产生的光合电子(PEs)。为了提高 PE 收集效率,关键是要增加 TMs 与电极之间的电化学界面。考虑到 TMs 的尺寸约为几百纳米,我们假设微柱形(MP)电极阵列可以最大限度地增加 TM/电极的界面面积。因此,我们开发了具有不同高度的 MP 电极,并研究了 TM-藻酸盐混合物的电喷雾,以均匀且共形地填充 MPs 之间的间隙。评估 TM-藻酸盐膜的均匀性和 TM 与 MP 电极之间的相互作用,以了解 MP 高度和膜质量如何影响 PE 电流的大小。与平面电极相比,具有 A/R 为 1.8 的 MP 电极的 PE 电流增加了 2.4 倍,表明 TM 与电极之间的直接接触界面增加了。此外,为了证明这种方法的可扩展性,制备了 SU-8 MP 电极的阵列,并在没有介体的情况下监测到高达 3.2 μA 的 PE 电流,在 68 mW/cm 下。最后,PE 电流的收集在 14 天内没有衰减,证明了 TM-藻酸盐生物光电阳极的长期稳定性。

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