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1
Recovering phosphorous from biogas fermentation residues indicates promising economic results.从沼气发酵残留物中回收磷表明具有可观的经济效益。
Chemosphere. 2022 Mar;291(Pt 1):133008. doi: 10.1016/j.chemosphere.2021.133008. Epub 2021 Nov 25.
2
Novel sorbent shows promising financial results on P recovery from sludge water.新型吸附剂在从污泥水中回收磷方面显示出可观的财务成果。
Chemosphere. 2021 Aug;276:130097. doi: 10.1016/j.chemosphere.2021.130097. Epub 2021 Mar 4.
3
Biochars as media for air pollution control systems: Contaminant removal, applications and future research directions.生物炭作为空气污染控制系统的介质:污染物去除、应用和未来研究方向。
Sci Total Environ. 2021 Jan 20;753:142249. doi: 10.1016/j.scitotenv.2020.142249. Epub 2020 Sep 8.
4
Modification on biochars for applications: A research update.改性生物炭的应用:研究进展。
Bioresour Technol. 2021 Jan;319:124100. doi: 10.1016/j.biortech.2020.124100. Epub 2020 Sep 10.
5
Insight into activated carbon from different kinds of chemical activating agents: A review.不同化学活化剂的活性炭研究进展:综述。
Sci Total Environ. 2020 Dec 1;746:141094. doi: 10.1016/j.scitotenv.2020.141094. Epub 2020 Jul 25.
6
A critical review of the production and advanced utilization of biochar via selective pyrolysis of lignocellulosic biomass.通过木质纤维素生物质的选择性热解生产和先进利用生物炭的批判性回顾。
Bioresour Technol. 2020 Sep;312:123614. doi: 10.1016/j.biortech.2020.123614. Epub 2020 Jun 2.
7
Algal biodiesel production with engineered biochar as a heterogeneous solid acid catalyst.利用工程化生物炭作为多相固体酸催化剂生产藻类生物柴油。
Bioresour Technol. 2020 Aug;310:123392. doi: 10.1016/j.biortech.2020.123392. Epub 2020 Apr 18.
8
Converting waste lignin into nano-biochar as a renewable substitute of carbon black for reinforcing styrene-butadiene rubber.将废木质素转化为纳米生物炭,作为碳黑的可再生替代品,用于增强丁苯橡胶。
Waste Manag. 2020 Feb 1;102:732-742. doi: 10.1016/j.wasman.2019.11.019. Epub 2019 Dec 2.
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SOH-Containing Functional Carbon Materials: Synthesis, Structure, and Acid Catalysis.含硫功能碳材料:合成、结构与酸催化。
Chem Rev. 2019 Nov 27;119(22):11576-11630. doi: 10.1021/acs.chemrev.9b00199. Epub 2019 Oct 7.
10
Heteroatom-doped porous carbons from sucrose and phytic acid for adsorptive desulfurization and sulfamethoxazole removal: A comparison between aqueous and non-aqueous adsorption.基于蔗糖和植酸的杂原子掺杂多孔碳的吸附脱硫及磺胺甲恶唑去除性能:水相和非水相吸附的比较。
J Colloid Interface Sci. 2019 Dec 1;557:336-348. doi: 10.1016/j.jcis.2019.09.032. Epub 2019 Sep 10.

椰壳和椰糠生物炭:生产与活化技术、经济金融方面及应用综述。

Coconut shell and husk biochar: A review of production and activation technology, economic, financial aspect and application.

机构信息

School of Chemical Engineering, College of Engineering, Universiti Teknologi MARA (UiTM) Sarawak Branch, Kota Samarahan, Sarawak, Malaysia.

School of Chemical Engineering, College of Engineering, Universiti Teknologi MARA (UiTM) Selangor Branch, Shah Alam, Selangor, Malaysia.

出版信息

Waste Manag Res. 2023 Jan;41(1):37-51. doi: 10.1177/0734242X221127167. Epub 2022 Nov 8.

DOI:10.1177/0734242X221127167
PMID:36346183
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9925910/
Abstract

The coconut industry generates a relatively large amount of coconut shell and husk biomass, which can be utilized for industrial and environmental purposes. Immense potential for added value when coconut shell and husk biomass are turned into biochar and limited studies are available, making this review paper significant. This paper specifically presents the production and activation technology, economic and financial aspect and application of biochar from coconut shell and husk biomass. Pyrolysis, gasification and self-sustained carbonization are among the production technology discussed to convert this biomass into carbon-rich materials with distinctive characteristics. The surface characteristics of coconut-based biochar, that is, Brunauer-Emmett-Teller (BET) surface area (), pore volume (), pore diameter () and surface functional group can be enhanced by physical and chemical activation and metal impregnation. Due to their favourable characteristics, coconut shell and husk-activated biochar exhibit their potential as valuable adsorption materials for industrial and environmental application including biodiesel production, capacitive deionization, soil amendment, water treatment and carbon sequestration. With the knowledge of the potential, the coconut industry can contribute to both the local and global biocircular economy by producing coconut shell and husk biochar for economic development and environmental remediation. The capital and operating cost for production and activation processes must be taken into account to ensure bioeconomy sustainability, hence coconut shell and husk biomass have a great potential for income generation.

摘要

椰子产业产生了相对大量的椰子壳和椰糠生物质,可用于工业和环境目的。当椰子壳和椰糠生物质转化为生物炭时,具有巨大的增值潜力,而目前这方面的研究有限,因此本文具有重要意义。本文专门介绍了椰壳和椰糠生物质生物炭的生产和活化技术、经济金融方面以及应用。热解、气化和自维持碳化是将这种生物质转化为具有独特特性的富碳材料的生产技术之一。通过物理和化学活化以及金属浸渍,可以增强基于椰子的生物炭的表面特性,即比表面积()、孔体积()、孔径()和表面官能团。由于其良好的特性,椰子壳和椰糠活化生物炭作为有价值的吸附材料,在工业和环境应用中具有潜力,包括生物柴油生产、电容去离子、土壤改良、水处理和碳封存。了解这些潜力后,椰子产业可以通过生产椰子壳和椰糠生物炭为经济发展和环境修复做出贡献,从而为当地和全球生物循环经济做出贡献。必须考虑生产和活化过程的资本和运营成本,以确保生物经济的可持续性,因此椰子壳和椰糠生物质具有很大的创收潜力。