当前纳米工程生物质发酵的挑战:从生物质发酵全过程的角度综述

IF 13 Q1 ENERGY & FUELS
Zi-Tong Zhao , Jie Ding , Geng Luo , Bo-Yuan Wang , Han-Jun Sun , Bing-Feng Liu , Guang-Li Cao , Mei-Yi Bao , Nan-Qi Ren , Ji-Wei Pang , Shan-Shan Yang
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引用次数: 0

摘要

暗发酵作为一种高效、绿色的生物制氢途径,受到了广泛的重视和评价。木质纤维素生物质是一种容易获得和丰富的原料,可以用作生物制氢的可持续原料。然而,生物氢的低产量是生物工艺的固有问题,限制了其进一步向商业利润发展。近年来,纳米添加剂的补充作为一种工艺改进策略受到越来越多的关注,因为纳米添加剂具有加速工艺性能的能力和低能耗、易于操作的优势。然而,利用纳米材料进行生物质发酵仍处于起步阶段。本文综述和评价纳米技术在生物质制氢各工序的可行性,以提高该工艺的经济可行性。许多方面,如利用纳米材料作为化学预处理技术的替代品的可能性已经在这篇综述中强调。此外,还详细分析了金属基纳米颗粒、纳米复合材料和石墨烯基纳米材料等纳米结构材料对生物氢发酵的影响及其可能的作用机制。此外,还对固定化纳米颗粒如何影响酶效率以及它们对抑制化学物质的阻断作用进行了详细的评估。此外,从科学经济学和碳中和的角度对生物质发酵的可持续性进行了评估,以提高该过程的整体效益。最后,本文提出了纳米工程生物过程的改进方法,并提出了进一步研究的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Current challenges in nano-engineered biomass valorization: A comprehensive review from the whole procedure of biomass fermentation perspective

Current challenges in nano-engineered biomass valorization: A comprehensive review from the whole procedure of biomass fermentation perspective
Dark fermentation has been widely regarded and appraised as an efficient and green route for biohydrogen production. Lignocellulosic biomass is a readily available and abundant feedstock that could be used as a sustainable feedstock for biohydrogen generation. However, low yield of biohydrogen is an inherent issue of the bioprocess restricting its further development towards commercial margins. Recently, the supplement of nano-additives has aroused more attention as a process improvement strategy because of their ability to accelerate process performance and their strengths of low energy consumption and easy operation. Nevertheless, the utilization of nanomaterials for biomass fermentation is still in its infancy. Here we review and evaluate the feasibility of nanotechnology in each procedure of biomass to biohydrogen to improve the economic feasibility of the process. Numerous aspects such as the possibility of utilizing nanomaterials as an alternative to chemical pretreatment techniques have been highlighted in this review. Additionally, the effect of these nanostructured materials (e.g., metal-based nanoparticles, nanocomposites, and graphene-based nanomaterials) on biohydrogen fermentation and the potential functional mechanisms were also analyzed in detail. Moreover, the assessment on how the immobilized nanoparticles affect enzymatic efficiency and how well they can block inhibitory chemicals were elaborated. Further, the sustainability of biomass fermentation was assessed in terms of science economics as well as carbon neutrality to improve the overall benefits of the process. Finally, the review suggests ways in which the nano-engineered bioprocesses might be improved, as well as suggested avenues for further research.
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来源期刊
Advances in Applied Energy
Advances in Applied Energy Energy-General Energy
CiteScore
23.90
自引率
0.00%
发文量
36
审稿时长
21 days
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