4.7 Article

Biomodification of feedstock for quality-improved biochar: A green method to enhance the Cd sorption capacity of Miscanthus lutarioriparius-derived biochar

期刊

JOURNAL OF CLEANER PRODUCTION
卷 350, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.jclepro.2022.131241

关键词

Miscanthus; Eco-industrial crop; Biochar modification technique; Biochar quality assessment; Heavy metal; Membership function

资金

  1. National Natural Science Foundation of China [32000259]
  2. Foundation for the Construction of Innovative Hunan [2019NK2021]
  3. Open Foundation of Hunan Provincial Key Laboratory for Crop Germplasm Innovation [19KFXM04]

向作者/读者索取更多资源

Severe environmental and ecological problems have occurred in Dongting Lake due to unharvested miscanthus biomass. Pyrolyzing the biomass to produce biochar is a promising solution. This study investigated two biomass biomodification techniques, fungal decomposition and bacterial digestion, as well as a biochar Fe-modification technique, to improve the sorption efficiency of biochar. The results showed that both biomass modification techniques increased the Cd sorption capacity of biochar, and Fe modification further enhanced the sorption capacity.
Severe environmental and ecological problems have resulted due to the unharvested Miscanthus lutarioriparius biomass in Dongting Lake, the largest miscanthus production hub in the world. Pyrolyzing the miscanthus biomass to produce biochar is a win-win strategy for abandoned miscanthus biomass utilization and Cd-polluted paddy restoration in Hunan. However, the sorption efficiency of biochar requires improvement by modification. It is theoretically possible that biological modification by fungi and bacteria as well as a modification technique using Fe will increase the Cd sorption capacity. Thus, the current study used two biomass biomodification techniques, FB (fungal decomposition) and BB (bacterial digestion), and one biochar Fe-modification technique (by NH3.H2O-FeCl3), and determined their ability to improve biochar quality. The results showed that the biomass modification by FB and BB increased the Cd sorption capacity of the derived biochar. The Cd sorption capacity of FB-derived biochar (36.4 mg g(-1)) was significantly greater as compared to BB-derived biochar (30.2 mg g(-1)) and the unmodified control (14.8 mg g(-1)). This improvement can be further optimized by Fe modification, with an average potential of 22.2% (13.5-32.3%). The increased Cd sorption capacity is attributed to (in descending order of importance) the increased amount of ash, specific surface area, amount of alkaline functional groups and phenolic hydroxyl groups, and the pH of the biochar after modification. The FeFB-derived biochar pyrolyzed under 650 ? was tested and exhibited the highest Cd sorption capacity, at 64.9 mg g(-1). Biomodification of M. lutarioriparius biomass and its subsequent pyrolysis to produce biochar will simultaneously provide economic and ecological benefits. This approach provides a model for the integrated production of food and energy from biomass.

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