Sheikh Zaheer Ud Din, Bajar Somvir, Devi Arti, Rose Pawan Kumar, Suhag Meenakshi, Yadav Arti, Yadav Deepak Kumar, Deswal Tanuj, Kaur Japleen, Kothari Richa, Pathania Deepak, Rani Neeta, Singh Anita
Department of Environmental Sciences, Central University of Jammu, Samba, 181143, Jammu and Kashmir, India.
Department of Environmental Science and Engineering, J.C. Bose University of Science and Technology, YMCA, Faridabad, 121006, Haryana, India.
Enzyme Microb Technol. 2023 Dec;171:110304. doi: 10.1016/j.enzmictec.2023.110304. Epub 2023 Aug 7.
Depleting fossil fuels and net carbon emissions associated with their burning have driven the need to find alternative energy sources. Biofuels are near-perfect candidates for alternative energy sources as they are renewable and account for no net CO emissions. However, biofuel production must overcome various challenges to compete with conventional fuels. Conventional methods for bioconversion of biomass to biofuel include chemical, thermochemical, and biological processes. Substrate selection and processing, low yield, and total cost of production are some of the main issues associated with biofuel generation. Recently, the uses of nanotechnology and nanoparticles have been explored to improve the biofuel production processes because of their high adsorption, high reactivity, and catalytic properties. The role of these nanoscale particles and nanocatalysts in biomass conversion and their effect on biofuel production processes and yield are discussed in the present article. The applicability of nanotechnology in production processes of biobutanol, bioethanol, biodiesel, biohydrogen, and biogas under biorefinery approach are presented. Different types of nanoparticles, and their function in the bioprocess, such as electron transfer, pretreatment, hydrolysis, microalgae cultivation, lipid extraction, dark and photo fermentation, immobilization, and suppression of inhibitory compounds, are also highlighted. Finally, the current and potential applications of nanotechnology in biorefineries are also discussed.
化石燃料的枯竭及其燃烧所产生的净碳排放促使人们需要寻找替代能源。生物燃料是替代能源的近乎完美的选择,因为它们是可再生的,且不会产生净二氧化碳排放。然而,生物燃料生产必须克服各种挑战才能与传统燃料竞争。将生物质转化为生物燃料的传统方法包括化学、热化学和生物过程。底物选择与处理、低产量以及生产成本是与生物燃料生产相关的一些主要问题。最近,由于纳米技术和纳米颗粒具有高吸附性、高反应活性和催化性能,人们已对其在改善生物燃料生产过程中的应用进行了探索。本文讨论了这些纳米级颗粒和纳米催化剂在生物质转化中的作用及其对生物燃料生产过程和产量的影响。介绍了纳米技术在生物炼制方法下生物丁醇、生物乙醇、生物柴油、生物氢气和沼气生产过程中的适用性。还强调了不同类型的纳米颗粒及其在生物过程中的功能,如电子转移、预处理、水解、微藻培养、脂质提取、暗发酵和光发酵、固定化以及抑制抑制性化合物等。最后,还讨论了纳米技术在生物炼制中的当前和潜在应用。