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用于生物能源应用的天然同位素丰度固态核磁共振

Solid-state NMR at natural isotopic abundance for bioenergy applications.

作者信息

Addison Bennett, Dickwella Widange Malitha C, Pu Yunqiao, Ragauskas Arthur J, Harman-Ware Anne E

机构信息

Renewable Resources and Enabling Sciences Center, National Renewable Energy Laboratory, Golden, CO, 80401, USA.

Joint Institute for Biological Sciences, Biosciences Division, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA.

出版信息

Biotechnol Biofuels Bioprod. 2025 Apr 28;18(1):46. doi: 10.1186/s13068-025-02648-z.

Abstract

Lignocellulosic biomass offers a vast and renewable resource for biofuel production and carbon management solutions. The effective conversion of lignocellulosic biomass into economically competitive biofuels and bioproducts demands a comprehensive understanding of its complex structure and composition, often requiring a range of analytical tools to achieve meaningful insights. However, for the analysis of rigid solids, many traditional methods necessitate dissolution or chemical/physical modification of the sample, which limit our ability to capture an intact view of its structural components. This highlights the need for non-destructive approaches, such as solid-state nuclear magnetic resonance (ssNMR), which preserves the sample's natural state while providing deep, molecular-level insights. While advanced multi-dimensional ssNMR on C-enriched materials has recently proven exceptionally valuable for elucidating the complex macrostructure of biomass, isotopic enrichment is expensive, laborious and is clearly infeasible at large scales. In this review, we explore the role of solid-state NMR methods at natural isotopic abundance as essential tools for the non-destructive, in-depth characterization of lignocellulosic biomass and bioenergy materials in their native and unaltered state. After a brief introduction to the basic principles of solid-state NMR, we first describe the acquisition and interpretation of routine 1D C ssNMR spectra of lignocellulose and other related biopolymers and products. We then delve into more advanced ssNMR approaches, including key spectral editing techniques, probing polymer dynamics, and various 2D methods applicable at natural abundance. Understanding of domain miscibility as observed from proton-based spin diffusion effects is a theme throughout. Our aim is to highlight key examples where ssNMR provides valuable insights into the composition, structure, dynamics, and morphology of rigid biomaterials relevant to the bioenergy economy, revealing both the native structures and fundamental transformations that occur across conversion and decomposition pathways. We hope that this review encourages a broader adoption of ssNMR methods in bioenergy research, where it can serve as a pivotal analytical tool for achieving sustainable biomass utilization and advancing a carbon-efficient bioeconomy.

摘要

木质纤维素生物质为生物燃料生产和碳管理解决方案提供了丰富的可再生资源。要将木质纤维素生物质有效地转化为具有经济竞争力的生物燃料和生物产品,需要全面了解其复杂的结构和组成,这通常需要一系列分析工具才能获得有意义的见解。然而,对于刚性固体的分析,许多传统方法需要对样品进行溶解或化学/物理改性,这限制了我们完整观察其结构成分的能力。这凸显了无损分析方法的必要性,比如固态核磁共振(ssNMR),它能在保持样品自然状态的同时提供深入的分子水平见解。虽然最近在富含碳的材料上进行的先进多维ssNMR已被证明在阐明生物质的复杂宏观结构方面极具价值,但同位素富集成本高昂、操作繁琐,在大规模应用时显然不可行。在这篇综述中,我们探讨了自然同位素丰度下固态核磁共振方法作为无损、深入表征木质纤维素生物质和生物能源材料原始未改变状态的重要工具的作用。在简要介绍固态核磁共振的基本原理之后,我们首先描述木质纤维素及其他相关生物聚合物和产品的常规一维碳ssNMR谱图的采集与解读。然后,我们深入探讨更先进的ssNMR方法,包括关键的谱图编辑技术、探测聚合物动力学以及适用于自然丰度的各种二维方法。从基于质子的自旋扩散效应观察到的区域混溶性理解是贯穿始终的一个主题。我们的目的是突出一些关键实例,展示ssNMR如何为与生物能源经济相关的刚性生物材料的组成、结构、动力学和形态提供有价值的见解,揭示原始结构以及在转化和分解途径中发生的基本转变。我们希望这篇综述能鼓励在生物能源研究中更广泛地采用ssNMR方法,使其成为实现可持续生物质利用和推动碳高效生物经济发展的关键分析工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b17/12039142/75daa7a78451/13068_2025_2648_Fig1_HTML.jpg

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