Harnessing Biochar in Contaminated Soil for Heavy Metal Immobilization, Soil Health Enhancement, and Carbon Sequestration

被引:3
作者
Mohan, Dinesh [1 ]
Abhishek, Kumar [1 ]
Patel, Manvendra [1 ]
Pittman Jr, Charles U. [2 ]
机构
[1] Jawaharlal Nehru Univ, Sch Environm Sci, New Delhi 110067, India
[2] Mississippi State Univ, Dept Chem, Mississippi, MS 39762 USA
关键词
SEQUENTIAL EXTRACTION PROCEDURE; BLACK CARBON; PYROLYSIS TEMPERATURE; LOW-COST; BIOAVAILABILITY; RICE; FRACTIONATION; DECOMPOSITION; REMEDIATION; AMENDMENT;
D O I
10.1021/acs.iecr.4c00082
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Biochar was employed for Cd(II) and Cr(VI) immobilization while simultaneously sequestering carbon in soil. Biochar application also improved soil fertility, raised carbon, and improved chili (Capsicum annum) crop production versus control soil. Tea residue biochar (TRBC) and paddy straw biochar (PSBC) were prepared by pyrolyzing used tea residue biomass (TRBM) and paddy straw biomass (PSBM) at 650 degrees C and 550 degrees C, respectively, under a nitrogen atmosphere. Both pyrolysis processes were carried out under N-2. TRBC and PSBC characterization was accomplished by combining X-ray diffraction (XRD), scanning electron microscopy (SEM), Fourier transform infrared spectroscopy, scanning electron microscopy with energy dispersive X-ray spectroscopy, elemental analysis, and S-BET surface area determinations. The TRBC and PSBC were applied to contaminated soil to investigate the Cr(VI) and Cd(II) immobilization. Soils amended with tea residue and paddy straw biomass were compared to TRBC- and PSBC-amended soils. Both raw biomass and their corresponding biochars were combined in different amounts in controlled incubations conducted for 168 days to investigate their CO2 emission sequestration potential. In biochar-amended soils, there was a marked increase in both cation exchange capacity and total organic carbon levels, accompanied by a significant reduction in soil CO2 emission flux versus soils amended with tea residue and paddy straw biomass. Sequential extractions were conducted to study Cr(VI) and Cd(II) immobilization in both biochar-amended soils. TRBC and PSBC addition to soil converts substantial amounts of exchangeable Cr(VI) and Cd(II) fractions to immobilized forms (iron-manganese, bound to organic material, and residual fractions). This provides both immobilization and toxicity reduction. Adsorption and metal reduction dominated Cr(VI) and Cd(II) immobilization. TRBC and PSBC application enhanced the chili (C. annum) plant growth (heights, leaf numbers, fresh weights and dry weights). This work highlighted the TRBC and PSBC potential as sustainable amendments that will simultaneously immobilize Cr(VI) and Cd(II), sequester carbon, and enhance soil fertility.
引用
收藏
页码:10380 / 10396
页数:17
相关论文
共 50 条
[31]   Recent advance on application of biochar in remediation of heavy metal contaminated soil: Emphasis on reaction factor, immobilization mechanism and functional modification [J].
Guo, Wenpei ;
Yao, Xin ;
Chen, Zhuo ;
Liu, Ting ;
Wang, Wei ;
Zhang, Shujun ;
Xian, Jiuqin ;
Wang, Yuehu .
JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2024, 371
[32]   Spectroscopic analyses to study the effect of biochar and compost on dry mass of canola and heavy metal immobilization in soil [J].
Mahmoud, Esawy ;
Ibrahim, Mahmoud ;
Ali, Nehal ;
Ali, Hanan .
COMMUNICATIONS IN SOIL SCIENCE AND PLANT ANALYSIS, 2018, 49 (16) :1990-2001
[33]   Effect of biochar on heavy metal immobilization and uptake by lettuce (Lactuca sativa L.) in agricultural soil [J].
Kim, Hyuck-Soo ;
Kim, Kwon-Rae ;
Kim, Ho-Jin ;
Yoon, Jung-Hwan ;
Yang, Jae E. ;
Ok, Yong Sik ;
Owens, Gary ;
Kim, Kye-Hoon .
ENVIRONMENTAL EARTH SCIENCES, 2015, 74 (02) :1249-1259
[34]   Immobilization of Cd and Pb in a contaminated acidic soil amended with hydroxyapatite, bentonite, and biochar [J].
Di Zhang ;
Aifang Ding ;
Ting Li ;
Xiaoxia Wu ;
Yanju Liu ;
Ravi Naidu .
Journal of Soils and Sediments, 2021, 21 :2262-2272
[35]   Biochar modulates heavy metal toxicity and improves microbial carbon use efficiency in soil [J].
Xu, Yilu ;
Seshadri, Balaji ;
Sarkar, Binoy ;
Wang, Hailong ;
Rumpel, Cornelia ;
Sparks, Donald ;
Farrell, Mark ;
Hall, Tony ;
Yang, Xiaodong ;
Bolan, Nanthi .
SCIENCE OF THE TOTAL ENVIRONMENT, 2018, 621 :148-159
[36]   Remediation via biochar and potential health risk of heavy metal contaminated soils [J].
Hu, Wei ;
Gao, Weichang ;
Tang, Yuan ;
Zhang, Qinghai ;
Tu, ChengLong ;
Cheng, Jianzhong .
ENVIRONMENTAL EARTH SCIENCES, 2022, 81 (20)
[37]   Effects of biochar on soil properties, heavy metal availability and uptake, and growth of summer squash grown in metal-contaminated soil [J].
Ibrahim, Ehab A. ;
El-Sherbini, Mohamed A. A. ;
Selim, El-Metwally M. .
SCIENTIA HORTICULTURAE, 2022, 301
[38]   Reduced carbon sequestration potential of biochar in acidic soil [J].
Sheng, Yaqi ;
Zhan, Yu ;
Zhu, Lizhong .
SCIENCE OF THE TOTAL ENVIRONMENT, 2016, 572 :129-137
[39]   Role of biochar-mineral composite amendment on the immobilization of heavy metals for Brassica chinensis from naturally contaminated soil [J].
Wang, Yu-Ying ;
You, Ling-Cong ;
Lyu, Hao-Hao ;
Liu, Yu-Xue ;
He, Li-Li ;
Hu, Yu-Di ;
Luo, Fan-Chen ;
Yang, Sheng-Mao .
ENVIRONMENTAL TECHNOLOGY & INNOVATION, 2022, 28
[40]   A systematic review of biochar aging and the potential eco-environmental risk in heavy metal contaminated soil [J].
Long, Xin-Xian ;
Yu, Ze-Ning ;
Liu, Shao-wen ;
Gao, Ting ;
Qiu, Rong-Liang .
JOURNAL OF HAZARDOUS MATERIALS, 2024, 472