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光催化纳米材料及其在生物质转化用于可再生化学品和燃料生产方面的意义。

Photocatalytic nanomaterials and their implications towards biomass conversion for renewable chemical and fuel production.

作者信息

Katre Shikha, Baghmare Pawan, Giri Ardhendu S

机构信息

Indian Institute of Science Education and Research Bhopal Bhauri Bhopal Madhya Pradesh-462066 India

出版信息

Nanoscale Adv. 2024 Sep 30;6(21):5258-84. doi: 10.1039/d4na00447g.

Abstract

Photocatalytic processes have recently gained popularity as a sustainable and energy-efficient method for converting biomass. This article gives a comprehensive overview of recent improvements in the photocatalytic conversion of biomass into useful chemicals and fuels utilizing various photocatalytic materials. The work delves into the assessment of diverse biomass sources and their preparation techniques, in addition to the synthesis of plasmonic nanoparticles as photocatalysts from biomass, offering a thorough examination. This review article provides detailed techniques for fabricating and synthesizing plasmonic nanoparticles. Furthermore, the study discusses advancements in coupling photo-oxidation alongside the hydrogen evolution mechanism for water splitting. Furthermore, prospective research topics are suggested, such as conducting a systematic analysis of photocatalysis's redox potential, developing more effective catalysts, broadening the variety of reaction types, and establishing industrial-scale photocatalytic production. Plasmonic photocatalysts have been utilized to convert biomass into H for energy, and to explore hypothesized molecular routes for the photocatalytic oxidation of 5-hydroxymethylfurfural (HMF), which may then be converted into 2,5-furandicarboxylic acid (FDCA). This review also discusses the surface functionalization of nanophotocatalysts with -COOH, NH, and OH groups to increase their reactivity. Reactive oxygen species (ROS) formed on the surface of nanophotocatalysts under UV or solar light play a crucial role in photocatalytic reactions. Our review has shown many challenges and difficulties related to CO hydrogenation reactions in the presence of sustainable H, powered by renewable energy sources. This is very critical for achieving a transition to net-zero emissions. These technologies will drive forward the development of biomass conversion processes into CO-based fuels. This paper explores recent advancements in the conversion of biomass-derived CO into valuable chemicals using plasmonic nanophotocatalysts. In addition to this, density functional theory (DFT) calculations also reveal how functional groups help stabilize these nanoparticles and enhance electron density through photo-adsorption. This study provides a remarkable and significant review that examines current trends, future directions, and ongoing debates in this field, focusing on reaction conditions, catalyst design, and proposed mechanisms for producing valuable chemicals. These chemicals include single-carbon compounds like formaldehyde, formic acid, and methanol, as well as C compounds such as acetic acid, ethanol, methyl formate, and oxyethylene ethers. Additionally, it addresses the current state of liquid-phase CO hydrogenation in the presence of photocatalysts, highlighting existing challenges and potential research paths. The paper also provides an overview of the advances and challenges in the electro- and photocatalytic oxidation of HMF (hydroxymethylfurfural), detailing strategies for creating high-value chemicals through these oxidation processes. These methods, which may involve reactions like the hydrogen evolution reaction, organic substrate reduction, CO reduction reaction, or N reduction reaction, are summarized and analyzed. Furthermore, the catalytic efficiency and mechanisms of various catalyst types in these conversion systems are introduced and discussed. Electron paramagnetic resonance and scavenger studies reveal the major active species (˙OH and ˙O ) in the photocatalytic conversion of biomass to different value-added products.

摘要

光催化过程作为一种可持续且节能的生物质转化方法,近来颇受关注。本文全面概述了利用各种光催化材料将生物质光催化转化为有用化学品和燃料的最新进展。该研究深入探讨了多种生物质来源及其制备技术,此外还涉及从生物质合成作为光催化剂的等离子体纳米颗粒,进行了全面的考察。这篇综述文章提供了制备和合成等离子体纳米颗粒的详细技术。此外,该研究还讨论了光氧化与水分解析氢机制耦合方面的进展。此外,还提出了一些前瞻性研究课题,如对光催化氧化还原电位进行系统分析、开发更有效的催化剂、拓宽反应类型的多样性以及建立工业规模的光催化生产。等离子体光催化剂已被用于将生物质转化为氢能,并探索5-羟甲基糠醛(HMF)光催化氧化的假设分子途径,HMF随后可转化为2,5-呋喃二甲酸(FDCA)。本综述还讨论了用-COOH、NH和OH基团对纳米光催化剂进行表面功能化以提高其反应活性。在紫外光或太阳光下,纳米光催化剂表面形成的活性氧物种(ROS)在光催化反应中起关键作用。我们的综述表明,在可再生能源驱动的可持续氢气存在下,CO加氢反应存在许多挑战和困难。这对于实现向净零排放的转变至关重要。这些技术将推动生物质转化为基于CO的燃料的工艺发展。本文探讨了利用等离子体纳米光催化剂将生物质衍生的CO转化为有价值化学品的最新进展。除此之外,密度泛函理论(DFT)计算还揭示了官能团如何通过光吸附帮助稳定这些纳米颗粒并增强电子密度。本研究提供了一篇卓越且重要的综述,审视了该领域的当前趋势、未来方向和持续的争论,重点关注反应条件、催化剂设计以及生产有价值化学品的 proposed 机制。这些化学品包括甲醛、甲酸和甲醇等单碳化合物,以及乙酸、乙醇、甲酸甲酯和氧乙烯醚等含碳化合物。此外,它还阐述了在光催化剂存在下液相CO加氢的现状,突出了现有挑战和潜在的研究路径。本文还概述了HMF(羟甲基糠醛)电催化氧化和光催化氧化的进展与挑战,详细介绍了通过这些氧化过程制备高价值化学品的策略。这些方法可能涉及析氢反应、有机底物还原、CO还原反应或N还原反应等,对其进行了总结和分析。此外,还介绍并讨论了这些转化系统中各种催化剂类型的催化效率和机制。电子顺磁共振和清除剂研究揭示了生物质光催化转化为不同增值产品过程中的主要活性物种(˙OH和˙O)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b079/11495255/c08ee807fe48/d4na00447g-f1.jpg

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