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离子交联羧甲基化纤维素纳米纤维/海藻酸盐生物光伏活水凝胶。

Biophotovoltaic living hydrogel of an ion-crosslinked carboxymethylated cellulose nanofiber/alginate.

机构信息

Department of Biosystems and Biomaterials Science and Engineering, Seoul National University, Seoul 08826, Republic of Korea; Department of Agriculture, Forestry, and Bioresources, Seoul National University, Seoul 08826, Republic of Korea.

Department of Biosystems and Biomaterials Science and Engineering, Seoul National University, Seoul 08826, Republic of Korea; Department of Agriculture, Forestry, and Bioresources, Seoul National University, Seoul 08826, Republic of Korea; Research Institute of Agriculture and Life Sciences, Seoul National University, Seoul 08826, Republic of Korea.

出版信息

Carbohydr Polym. 2023 Dec 1;321:121299. doi: 10.1016/j.carbpol.2023.121299. Epub 2023 Aug 14.

Abstract

Due to the low electrical power generation in liquid cultures of photosynthetic microalgae, a solid medium culture is demanded for the efficient design of biophotovoltaic (BPV) cells. In particular, the conductivity of the culture medium and the contact of microalgae with an electrode are crucial in harvesting electrons in BPV cells. Here, an ion-crosslinked carboxymethylated cellulose nanofiber (CM-CNF)/alginate is proposed as a living hydrogel for the green power generation of Chlorella vulgaris embedded in the hydrogel. The hydrogel crosslinked with Ca and Fe ions showed more efficient BPV properties than the hydrogel crosslinked with only Ca due to the increase of conductivity. The efficient transport of electrons generated by C. vulgaris improves the power generation of BPV cells. Moreover, the fluid channels imprinted in the living hydrogel maintain the viability of C. vulgaris even under the ambient environment by preventing the solid medium from being dried out.

摘要

由于光合微藻的液体培养中发电效率低,因此需要固体培养基来高效设计生物光伏 (BPV) 电池。特别是,培养基的电导率和微藻与电极的接触对于在 BPV 电池中收集电子至关重要。在这里,提出了一种离子交联的羧甲基纤维素纳米纤维 (CM-CNF)/海藻酸盐作为活水凝胶,用于嵌入水凝胶中的普通小球藻的绿色发电。与仅用 Ca 交联的水凝胶相比,用 Ca 和 Fe 离子交联的水凝胶具有更高的 BPV 性能,因为其电导率增加了。由 C. vulgaris 产生的电子的有效传输提高了 BPV 电池的发电效率。此外,活水凝胶中压印的流体通道通过防止固体培养基变干来维持 C. vulgaris 的活力,即使在环境条件下也是如此。

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