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纳米生物炭:可持续环境修复的最新进展、挑战与机遇

Nano-biochar: recent progress, challenges, and opportunities for sustainable environmental remediation.

作者信息

Bhandari Geeta, Gangola Saurabh, Dhasmana Archna, Rajput Vishal, Gupta Sanjay, Malik Sumira, Slama Petr

机构信息

Department of Biosciences, Himalayan School of Biosciences, Swami Rama Himalayan University, Dehradun, India.

School of Agriculture, Graphic Era Hill University, Bhimtal Campus, Uttarakhand, India.

出版信息

Front Microbiol. 2023 Jul 19;14:1214870. doi: 10.3389/fmicb.2023.1214870. eCollection 2023.

Abstract

Biochar is a carbonaceous by-product of lignocellulosic biomass developed by various thermochemical processes. Biochar can be transformed into "nano-biochar" by size reduction to nano-meters level. Nano-biochar presents remarkable physico-chemical behavior in comparison to macro-biochar including; higher stability, unique nanostructure, higher catalytic ability, larger specific surface area, higher porosity, improved surface functionality, and surface active sites. Nano-biochar efficiently regulates the transport and absorption of vital micro-and macro-nutrients, in addition to toxic contaminants (heavy metals, pesticides, antibiotics). However an extensive understanding of the recent nano-biochar studies is essential for large scale implementations, including development, physico-chemical properties and targeted use. Nano-biochar toxicity on different organisms and its in-direct effect on humans is an important issue of concern and needs to be extensively evaluated for large scale applications. This review provides a detailed insight on nanobiochar research for (1) development methodologies, (2) compositions and properties, (3) characterization methods, (4) potentiality as emerging sorbent, photocatalyst, enzyme carrier for environmental application, and (5) environmental concerns.

摘要

生物炭是木质纤维素生物质通过各种热化学过程产生的含碳副产品。生物炭可通过尺寸减小至纳米级转化为“纳米生物炭”。与宏观生物炭相比,纳米生物炭具有显著的物理化学特性,包括更高的稳定性、独特的纳米结构、更高的催化能力、更大的比表面积、更高的孔隙率、改善的表面功能和表面活性位点。纳米生物炭除了能有效调节重要的微量和大量营养素的运输与吸收外,还能调节有毒污染物(重金属、农药、抗生素)的运输与吸收。然而,要大规模应用,包括开发、物理化学性质和靶向用途等,深入了解近期的纳米生物炭研究至关重要。纳米生物炭对不同生物体的毒性及其对人类的间接影响是一个重要的关注点,需要针对大规模应用进行广泛评估。本综述详细介绍了纳米生物炭在以下方面的研究:(1)开发方法;(2)组成和性质;(3)表征方法;(4)作为新型吸附剂、光催化剂、环境应用酶载体的潜力;(5)环境问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7f6d/10400457/11e3199a8c4e/fmicb-14-1214870-g001.jpg

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