Photosynthetic Biohybrid System for Enhanced Abiotic N2-to-NH3 Conversion under Ambient Conditions.

IF 14.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Jinhyeong Jang, Yuzi Liu, David J Gosztola, Ivan Kuzmenko, Jens Niklas, Oleg G Poluektov, Byeongdu Lee, Elena A Rozhkova
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Abstract

Photosynthetic biohybrid systems (PBSs) offer an eco-friendly approach to transforming solar energy into value-added products by integrating biological entities with inorganic semiconductors. However, the chemical conversion capacity of most PBSs has inherent limitations, as whole-cell bacteria and isolated enzymes require fine-tuning of environmental conditions. Here, we report a new PBS developed by introducing free-standing ceria nanoparticles into the purple membrane (PM) of Halobacterium salinarum archaea, which can unidirectionally transfer charge carriers in response to incident photons, even after separation from living archaea at various conditions. Our microscopy, spectroscopy, and synchrotron X-ray scattering analyses confirm that the electrostatic assembly between ceria and PM creates seamless interfacial contact, thereby enhancing the photocatalytic capacity of ceria. Although the conversion of dinitrogen (N2) to ammonia (NH3) is thermodynamically challenging due to the triple bond in N2 and a series of charge-transfer reactions, our PM-ceria (PMC) hybrid nanoparticle efficiently produces NH3 by reducing N2 using solar energy even under atmospheric pressure and room temperature while simultaneously converting glycerol into value-added derivatives. Additionally, our PMC nanoparticle involves neither toxic/precious metals nor bioengineering processes to achieve enhanced photocatalytic N2-to-NH3 conversion. This study sheds light on the new aspect of PBSs by employing PM to potentially resolve the global energy and environmental challenges posed by the conventional Haber-Bosch process.

环境条件下增强非生物N2-to-NH3转化的光合生物杂交系统。
光合生物混合系统(PBSs)通过将生物实体与无机半导体相结合,提供了一种将太阳能转化为增值产品的环保方法。然而,大多数PBSs的化学转化能力具有固有的局限性,因为全细胞细菌和分离的酶需要对环境条件进行微调。在这里,我们报道了一种新的PBS,通过将独立的二氧化铈纳米颗粒引入盐盐菌古细菌的紫色膜(PM)中,即使在各种条件下与活的古细菌分离,它也可以响应入射光子单向转移载流子。我们的显微镜、光谱学和同步加速器x射线散射分析证实,二氧化铈和PM之间的静电组装创造了无缝的界面接触,从而增强了二氧化铈的光催化能力。虽然二氮(N2)转化为氨(NH3)在热力学上具有挑战性,但由于N2中的三键和一系列电荷转移反应,我们的PM-ceria (PMC)杂化纳米颗粒即使在常压和室温下也能有效地通过利用太阳能还原N2产生NH3,同时将甘油转化为增值衍生物。此外,我们的PMC纳米颗粒既不涉及有毒/贵金属,也不涉及生物工程过程,以实现增强的光催化n2到nh3的转化。本研究通过采用PM来解决传统Haber-Bosch工艺所带来的全球能源和环境挑战,揭示了PBSs的新方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
24.40
自引率
6.00%
发文量
2398
审稿时长
1.6 months
期刊介绍: The flagship journal of the American Chemical Society, known as the Journal of the American Chemical Society (JACS), has been a prestigious publication since its establishment in 1879. It holds a preeminent position in the field of chemistry and related interdisciplinary sciences. JACS is committed to disseminating cutting-edge research papers, covering a wide range of topics, and encompasses approximately 19,000 pages of Articles, Communications, and Perspectives annually. With a weekly publication frequency, JACS plays a vital role in advancing the field of chemistry by providing essential research.
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