|
|
Carbon sequestration and decontamination effects of char-based immobilized microorganisms in soils contaminated with emerging contaminants |
XU Yan-xing, CHENG Hao, HU Xiao-jie, TANG Lei, ZHOU Xian, GAO Yan-zheng |
Institute of Organic Contaminant Control and Soil Remediation, Nanjing Agricultural University, Nanjing 210095, China |
|
|
Abstract Char-based materials can play a key role in soil carbon sequestration and emission reduction, and can also be used as immobilized carriers of functional microorganisms. However, at present, relevant studies merely focus on a single direction of decontamination or carbon sequestration, lacking a systematic understanding of the synergistic effects of char-based materials. To comprehensively understand the role of char-based materials in environmental control, this review systematically summarized the recent research progress on the char-based materials used for microorganism-immobilization including biochar, activated carbon, carbon nanotubes, and carbon-based nanomaterials. The efficiencies and mechanisms of carbon-based materials in soil carbon sequestration and emission reduction were elucidated, and the effects and mechanisms of char-based materials-immobilized microorganisms on emerging contaminant decontamination in soil were also clarified. This review also pointed out the future studies including synergistical effects on the carbon sequestration and decontamination of char-based immobilized microorganisms, efficiency improvement of char-based materials, innovation of microbial-consortium immobilization methods, and industrial application of immobilized technology, which will provide some insights for the application of char-based materials to synergistically achieve the goal of “carbon fixation and pollution elimination” in contaminated soils.
|
Received: 05 May 2024
|
|
|
|
|
[1] Cheng X, Yu Z, Gao J, et al. Governance effects of pollution reduction and carbon mitigation of carbon emission trading policy in China [J]. Environmental Research, 2024,252:119074. [2] Jiang F, Chen B, Li P, et al. Spatio-temporal evolution and influencing factors of synergizing the reduction of pollution and carbon emissions-utilizing multi-source remote sensing data and GTWR model [J]. Environmental Research, 2023,229:115775. [3] Wang F, Xiang L, Sze-Yin Leung K, et al. Emerging contaminants: a one health perspective [J]. The Innovation, 2024,5(4):100612. [4] 陈雅婷,赵昕宇,李艳红,等.我国污染场地中新污染物的环境行为和修复进展 [J]. 环境工程, 2024,42(1):166-176. Chen Y T, Zhao X Y, Li Y H, et al. Environmental behavior and restoration progress of emerging contaminants in contaminated sites in china [J]. Environmental Engineering, 2024,42(1):166-176. [5] Majumder S, Neogi S, Dutta T, et al. The impact of biochar on soil carbon sequestration: Meta-analytical approach to evaluating environmental and economic advantages [J]. Journal of Environmental Management, 2019,250:109466. [6] Luo Z, Yao B, Yang X, et al. Novel insights into the adsorption of organic contaminants by biochar: a review [J]. Chemosphere, 2022, 287:132113. [7] Wu P, Wang Z, Bhatnagar A, et al. Microorganisms-carbonaceous materials immobilized complexes: synthesis, adaptability and environmental applications [J]. Journal of Hazardous Materials, 2021, 416:125915. [8] Li X, Gao Y, Ning X, et al. Research progress and hotspots on microbial remediation of heavy metal-contaminated soil: a systematic review and future perspectives [J]. Environmental Science and Pollution Research, 2023,30(56):118192-118212. [9] Wang L, Du X, Li Y, et al. Enzyme immobilization as a sustainable approach toward ecological remediation of organic-contaminated soils: advances, issues, and future perspectives [J]. Critical Reviews in Environmental Science and Technology, 2023,53(18):1684-1708. [10] Memon A H, Ding R, Yuan Q, et al. Coordination of GMP ligand with Cu to enhance the multiple enzymes stability and substrate specificity by co-immobilization process [J]. Biochemical Engineering Journal. 2018,136:102-108. [11] Mehrotra T, Dev S, Banerjee A, et al. Use of immobilized bacteria for environmental bioremediation: a review [J]. Journal of Environmental Chemical Engineering, 2021,9(5):105920. [12] Li R, Wang B, Niu A, et al. Application of biochar immobilized microorganisms for pollutants removal from wastewater: a review [J]. Science of The Total Environment, 2022,837:155563. [13] Saravanan A, Swaminaathan P, Kumar P S, et al. A comprehensive review on immobilized microbes-biochar and their environmental remediation: Mechanism, challenges and future perspectives [J]. Environmental Research, 2023,236:116723. [14] Najim A A, Radeef A Y, Al-Doori I, et al. Immobilization: the promising technique to protect and increase the efficiency of microorganisms to remove contaminants [J]. Journal of Chemical Technology & Biotechnology, 2024,99(8):1707-1733. [15] Yang Y, Wang X, Wang Y, et al. Pesticide contamination remediation by biochar-immobilized microorganisms: a review [J]. International Journal of Environmental Science and Technology, 2024,21(2): 2225-2238. [16] Ha N T H, Toan N C, Kajitvichyanukul P. Enhanced paraquat removal from contaminated water using cell-immobilized biochar [J]. Clean Technologies and Environmental Policy, 2022,24(4):1073-1085. [17] 窦冰然,郭会明,朱曼利,等.固定化酵母在酿造技术及燃料乙醇领域中的应用 [J]. 食品与发酵工业, 2016,42(10):222-226. Dou B R, Guo H M, Zhu M L, et al. The application of immobilized yeast in brewing technology and in fuel ethanol [J]. Food and fermentation industries, 2016,42(10):222-226. [18] Deng F, Dou R, Sun J, et al. Phenanthrene degradation in soil using biochar hybrid modified bio-microcapsules: determining the mechanism of action via comparative metagenomic analysis [J]. Science of The Total Environment, 2021,775:145798. [19] 顾玲峰.生物炭固定化菌群研制及其修复芘-Cr(Ⅵ)复合污染土壤研究 [D]. 上海:上海大学, 2016. Gu L F. Preparation of biochar immobilized consortium and itsremediation of pyrene and Cr(VI) co-contaminated soils [D]. Shanghai: Shanghai University, 2016. [20] Imam A, Suman S K, Singh R, et al. Application of laccase immobilized rice straw biochar for anthracene degradation [J]. Environmental Pollution, 2021,268:115827. [21] Zheng Z, Liu W, Zhou Q, et al. Effects of co-modified biochar immobilized laccase on remediation and bacterial community of PAHs-contaminated soil [J]. Journal of Hazardous Materials, 2023, 443:130372. [22] Ping J, Liu J, Dong Y, et al. Biochar inoculated with Rhodococcus biphenylivorans altered microecological regulation by promoting quorum sensing and electron transfer: Up-regulation of related genes and enhancement of phenol and ammonia degradation [J]. Bioresource Technology, 2024,397:130498. [23] Yang L, Cai T, Ding D, et al. Biodegradation of 2-hydroxyl-1, 4naphthoquinone (lawsone) by Pseudomonas taiwanensis LH-3isolated from activated sludge [J]. Scientific Reports, 2017,7(1): 6795. [24] Sonsuphab K, Toomsan W, Supanchaiyamat N, et al. Enhanced triclocarban remediation from groundwater using Pseudomonas fluorescens strain MC46immobilized on agro-industrial waste-derived biochar: optimization and kinetic analysis [J]. Journal of Environmental Chemical Engineering, 2022,10(3):107610. [25] Ouyang X, Yin H, Yu X, et al. Enhanced bioremediation of 2,3', 4,4',5-pentachlorodiphenyl by consortium GYB1immobilized on sodium alginate-biochar [J]. Science of the Total Environment, 2021, 788:147774. [26] Chen X, Lin H, Dong Y, et al. Mechanisms underlying enhanced bioremediation of sulfamethoxazole and zinc(II) by Bacillus sp. SDB4 immobilized on biochar [J]. Journal of Cleaner Production, 2022, 370:133483. [27] Zhang S, Wang J. Removal of chlortetracycline from water by Bacillus cereus immobilized on Chinese medicine residues biochar [J]. Water, Air, & Soil Pollution, 2021,6:1-14. [28] Yang F, Jian H, Wang C, et al. Effects of biochar on biodegradation of sulfamethoxazole and chloramphenicol by Pseudomonas stutzeri and Shewanella putrefaciens: Microbial growth, fatty acids, and the expression quantity of genes [J]. Journal of Hazardous Materials, 2021,406:124311. [29] Zou M, Tian W, Chu M, et al. Magnetically separable laccase-biochar composite enable highly efficient adsorption-degradation of quinolone antibiotics: Immobilization, removal performance and mechanisms [J]. Science of the Total Environment, 2023,879:163057. [30] 陆雯逸,王泽铭,左翔之,等.固定化菌剂对邻苯二甲酸酯的降解效能及途径 [J]. 中国环境科学, 2024,44(3):1584-1591. Lu W Y, Wang Z M, Zuo X Z, et al. The degradation efficiency and pathways of phthalic acid esters by immobilized bacterial agent [J]. China Environmental Science, 2024,44(3):1584-1591. [31] 左 粟.生物炭固定化微生物强化修复DMP污染土壤的研究 [D]. 天津:天津理工大学, 2020. Zuo L. Enhanced remediation of DMP contaminated soil using biochar immobilized microorganisms [D]. Tianjin: Tianjin University of Technology, 2020. [32] Zhang C, Li J, Wu X, et al. Rapid degradation of dimethomorph in polluted water and soil by Bacillus cereus WL08 immobilized on bamboo charcoal-sodium alginate [J]. Journal of Hazardous Materials, 2020,398:122806. [33] Yu T, Wang L, Ma F, et al. A bio-functions integration microcosm: self-immobilized biochar-pellets combined with two strains of bacteria to remove atrazine in water and mechanisms [J]. Journal of Hazardous Materials, 2020,384:121326. [34] Han H, Song P, Jiang Y, et al. Biochar immobilized hydrolase degrades PET microplastics and alleviates the disturbance of soil microbial function via modulating nitrogen and phosphorus cycles [J]. Journal of Hazardous Materials, 2024,474:134838. [35] Lou L, Huang Q, Lou Y, et al. Adsorption and degradation in the removal of nonylphenol from water by cells immobilized on biochar [J]. Chemosphere, 2019,228:676-684. [36] Du J, Sun P, Feng Z, et al. The biosorption capacity of biochar for 4-bromodiphengl ether: study of its kinetics, mechanism, and use as a carrier for immobilized bacteria [J]. Environmental Science and Pollution Research, 2016,23(4):3770-3780. [37] Huang J, Yang X, Wu Q, et al. Application of independent immobilization in benzo[a]pyrene biodegradation by synthetic microbial consortium [J]. Environmental Science and Pollution Research, 2019,26(20):21052-21058. [38] Mita L, Grumiro L, Rossi S, et al. Bisphenol A removal by a Pseudomonas aeruginosa immobilized on granular activated carbon and operating in a fluidized bed reactor [J]. Journal of Hazardous Materials, 2015,291:129-135. [39] Zhang C, You S, Liu Y, et al. Construction of luffa sponge-based magnetic carbon nanocarriers for laccase immobilization and its application in the removal of bisphenol A [J]. Bioresource Technology, 2020,305:123085. [40] 李 轶,胡洪营.固定在活性炭聚砜中空纤维膜中的Pseudomonas putida菌对四氯苯酚的共代谢降解 [J]. 环境科学, 2007,28(9): 2112-2116. LI Y, Hu H Y. Enhancement of biodegradation of 4-chlorophenol during co-metabolic process by immobilized-cells of Pseudomonas putida [J]. Environmental Science, 2007,28(9):2112-2116. [41] Al-Sareji O J, Meiczinger M, Al-Juboori R A, et al. Efficient removal of pharmaceutical contaminants from water and wastewater using immobilized laccase on activated carbon derived from pomegranate peels [J]. Scientific Reports. 2023,13(1):11933. [42] Al-Sareji O J, Meiczinger M, Somogyi V, et al. Removal of emerging pollutants from water using enzyme-immobilized activated carbon from coconut shell [J]. Journal of Environmental Chemical Engineering, 2023,11(3):109803. [43] 许双燕.活性炭固定化复合菌群吸附-降解水中抗生素的研究 [D]. 杭州:浙江农林大学, 2021. Xu S Y. Study on adsorption-degradation of antibiotics in water by composite bacteria immobilized on activated carbon [D]. Hangzhou: Zhejiang A&F University, 2021. [44] 赵 暹,李 成,高家通,等.复合固定化混合菌DP3去除邻苯二甲酸二丁酯 [J]. 环境化学, 2021,40(5):1558-1566. Zhao X, Li C, Gao J T, et al. The removal of dibutyl phthalate by immobilization of mixed bacteria DP3 [J]. Environmental Chemistry, 2021,40(5):1558-1566. [45] 瞿 欢.草甘膦降解菌的固定化及其应用研究 [D]. 武汉:华中农业大学, 2023. Qu H. Immobilization and application of glyphosate degrading bacteria [D]. Wuhan: Huazhong Agricultural University, 2023. [46] Masjoudi M, Golgoli M, Ghobadi Nejad Z, et al. Pharmaceuticals removal by immobilized laccase on polyvinylidene fluoride nanocomposite with multi-walled carbon nanotubes [J]. Chemosphere, 2021,263:128043. [47] 王旺民,豆 杨,徐乐天,等.生物炭和碳纳米管固定化漆酶去除水体雌二醇 [J]. 环境工程学报, 2024,18(2):492-502. Wang W M, Dou Y, Xu L T, et al. Removal of β-estradiol in wastewater using laccase immobilized by biochar and carbon nano tube [J]. Chinese Journal of Enviromental Engineering, 2024,18(2): 492-502. [48] Ren W, Liu H, Mao T, et al. Enhanced remediation of PAHs-contaminated site soil by bioaugmentation with graphene oxide immobilized bacterial pellets [J]. Journal of Hazardous Materials, 2022,433:128793. [49] 刘 娜,梁 刚,董新维,等.酪氨酸酶固定化碳材料对苯酚的生物降解性能 [J]. 吉林大学学报(地球科学版), 2017,47(2):573-579. Liu N, Liang G, Dong X W, et al. Biodegradation property of phenol using the immobilized tyrosinase on carbon material [J]. Journal of Jilin University (Earth Science Edition), 2017,47(2):573-579. [50] Wu R, Zhang Q, Xue C, et al. Mechanism for removing 17beta-estradiol by bio-nanocomposite FJ1@rGO based on integration of adsorption and biodegradation [J]. Chemical Engineering Journal, 2023,473:145317. [51] Das M, Adholeya A. Potential uses of immobilized bacteria, fungi, algae, and their aggregates for treatment of organic and inorganic pollutants in wastewater [M]. American Chemical Society, 2015:1206, 319-337. [52] Luo L, Wang J, Lv J, et al. Carbon sequestration strategies in soil using biochar: advances, challenges, and opportunities [J]. Environmental Science & Technology, 2023,57(31):11357-11372. [53] Kerner P, Struhs E, Mirkouei A, et al. Microbial responses to biochar soil amendment and influential factors: a three-level meta-analysis [J]. Environmental Science & Technology, 2023,57(48): 19838-19848. [54] Qi S, Degen A, Wang W, et al. Systemic review for the use of biochar to mitigate soil degradation [J]. GCB Bioenergy, 2024,16(6):e13147. [55] Cheng N, Wang B, Wu P, et al. Adsorption of emerging contaminants from water and wastewater by modified biochar: a review [J]. Environmental Pollution, 2021,273:116448. [56] Greiner B G, Shimabuku K K, Summers R S. Influence of biochar thermal regeneration on sulfamethoxazole and dissolved organic matter adsorption [J]. Environmental Science Water Research & Technology, 2018,4(2):169-174. [57] Zhou H, Huang X, Jiang L, et al. Improved degradation of petroleum contaminants in hydraulic fracturing flowback and produced water using laccase immobilized on functionalized biochar [J]. Environmental Technology & Innovation, 2023,32:103280. [58] Lehmann J, Cowie A, Masiello C A, et al. Biochar in climate change mitigation [J]. Nature Geoscience, 2021,14(12):883-892. [59] Abbas A F, Ahmed M J. Mesoporous activated carbon from date stones (Phoenix dactylifera L.) by one-step microwave assisted K2CO3 pyrolysis [J]. Journal of Water Process Engineering, 2016,9:201-207. [60] Heidarinejad Z, Dehghani M H, Heidari M, et al. Methods for preparation and activation of activated carbon: a review [J]. Environmental Chemistry Letters, 2020,18(2):393-415. [61] Bose S, Senthil Kumar P, Rangasamy G, et al. A review on the applicability of adsorption techniques for remediation of recalcitrant pesticides [J]. Chemosphere, 2023,313:137481. [62] Tan H, Pan C, Yin C, et al. Toward systematic understanding of adsorptive removal of legacy and emerging per-and polyfluoroalkyl substances (PFASs) by various activated carbons (ACs) [J]. Environmental Research, 2023,233:116495. [63] 任 强.活性炭吸附室内环境中典型气态污染物的实验及预测研究 [D]. 天津:天津大学, 2021. Ren Q. Experimental and predictive study on adsorption of typical gaseous pollutants in indoor environment by activated carbon [D]. Tanjing: Tanjing University, 2021. [64] Si D, Wu S, Wu H, et al. Activated carbon application simultaneously alleviates paddy soil arsenic mobilization and carbon emission by decreasing porewater dissolved organic matter [J]. Environmental Science & Technology, 2024,58(18):7880-7890. [65] Zhang X, Guo W, Ngo H H, et al. Performance evaluation of powdered activated carbon for removing 28 types of antibiotics from water [J]. Journal of Environmental Management, 2016,172:193-200. [66] Annadurai G, Juang R, Lee D. Biodegradation and adsorption of phenol using activated carbon immobilized with Pseudomonas Putida [J]. Journal of Environmental Science and Health, Part A, 2002, 37(6):1133-1146. [67] 王志勇,蒲 源,王 丹,等.非金属碳基纳米催化材料研究进展 [J]. 科学通报, 2018,63(34):13. Wang Z Y, Pu Y, Wang D, et al. Recent advances in metal-free carbon-based nanocatalysts [J]. Chinese Science Bulletin, 2018,63(34): 13. [68] Verma S K, Das A K, Gantait S, et al. Green synthesis of carbon-based nanomaterials and their applications in various sectors: a topical review [J]. Carbon Letters, 2022,32(2):365-393. [69] Alothman Z A, Badjah A Y, Ali I. Facile synthesis and characterization of multi walled carbon nanotubes for fast and effective removal of 4 tert octylphenol endocrine disruptor in water [J]. Journal of Molecular Liquids, 2019,275:41-48. [70] 赵 沛.碳量子点的绿色合成及其在Klebsiella sp.强化畜禽废水产氢系统的示踪研究 [D]. 芜湖:安徽工程大学, 2023. Zhao P. Green synthesis of carbon quantum dots and their tracer study in Klebsiella sp. enhanced hydrogen production system of livestock wastewater [D]. Wuhu: Anhui Polytechnic University, 2023. [71] Wen N, Jiang Q, Cui J, et al. Intracellular InP quantum dots facilitate the conversion of carbon dioxide to value-added chemicals in non-photosynthetic bacteria [J]. Nano Today. 2022,47:101681. [72] Guan X, Erşan S, Hu X, et al. Maximizing light-driven CO2 and N2 fixation efficiency in quantum dot-bacteria hybrids [J]. Nature Catalysis, 2022,5(11):1019-1029. [73] Yameen M Z, Naqvi S R, Juchelková D, et al. Harnessing the power of functionalized biochar: progress, challenges, and future perspectives in energy, water treatment, and environmental sustainability [J]. Biochar, 2024,6(1):25. [74] Xiao X, Chen B, Chen Z, et al. Insight into multiple and multilevel structures of biochars and their potential environmental applications: a critical review [J]. Environmental Science & Technology, 2018, 52(9):5027-5047. [75] 秦雅鑫,李桂英,安太成,等.生物炭环境应用过程中的生态和健康风险研究进展 [J]. 科学通报. 2021,66(1):5-20. Qin Y X, Li G Y, An T C, et al. Advances in ecological and health risks of biochar during environmental applications [J]. Chinese Science Bulletin, 2021,66(1):5-20. [76] Kuzyakov Y, Bogomolova I, Glaser B. Biochar stability in soil: decomposition during eight years and transformation as assessed by compound-specific 14C analysis [J]. Soil Biology and Biochemistry, 2014,70:229-236. [77] 徐 敏,伍 钧,张小洪,等.生物炭施用的固碳减排潜力及农田效应 [J]. 生态学报, 2018,38(2):393-404. Xu M, Wu J, Zhang X H, et al. Impact of biochar application on carbon sequestration, soil fertility and crop productivity [J]. Acta Ecologica Sinica, 2018,38(2):393-404. [78] Chen Y, Du Z, Weng Z H, et al. Formation of soil organic carbon pool is regulated by the structure of dissolved organic matter and microbial carbon pump efficacy: a decadal study comparing different carbon management strategies [J]. Global Change Biology, 2023,29(18): 5445-5459. [79] 杨 阳,王宝荣,窦艳星,等.植物源和微生物源土壤有机碳转化与稳定研究进展 [J]. 应用生态学报, 2024,35(1):111-123. Yang Y, Wang B R, Dou YX, et al. Advances in the research of transformation and stabilization of soil organic carbon from plant and microbe [J]. Chinese Journal of Applied Ecology, 2024,35(1):111-123. [80] Liang C, Amelung W, Lehmann J, et al. Quantitative assessment of microbial necromass contribution to soil organic matter [J]. Global Change Biology, 2019,25(11):3578-3590. [81] Xiao K, Zhao Y, Liang C, et al. Introducing the soil mineral carbon pump [J]. Nature Reviews Earth & Environment, 2023,4(3):135-136. [82] Palviainen M, Berninger F, Bruckman V J, et al. Effects of biochar on carbon and nitrogen fluxes in boreal forest soil [J]. Plant and Soil, 2018,425(1):71-85. [83] Minamino Y, Fujitake N, Suzuki T, et al. Effect of biochar addition on leaf-litter decomposition at soil surface during three years in a warm-temperate secondary deciduous forest, Japan [J]. Scientific Reports, 2019,9(1):16961. [84] Liang C, Schimel J P, Jastrow J D. The importance of anabolism in microbial control over soil carbon storage [J]. Nature Microbiology, 2017,2(8):17105. [85] Cotrufo M F, Lavallee J M. Chapter One-soil organic matter formation, persistence, and functioning: a synthesis of current understanding to inform its conservation and regeneration [M]. Advances in Agronomy, Sparks D L, Academic Press, 2022,172:1-66. [86] Joseph S, Cowie A L, Van Zwieten L, et al. How biochar works, and when it doesn't: a review of mechanisms controlling soil and plant responses to biochar [J]. GCB Bioenergy, 2021,13(11):1731-1764. [87] 李晓娜,张睿含,张倩影,等.生物质炭服务农田生态系统“碳中和”的机制和潜力研究进展 [J]. 环境科学研究, 2023,36(2):381-392. Li X N, Zhang R H, Zhang Q Y, et al. Mechanisms and potential of biochar to serve ‘carbon neutrality’ in agroecosystem: a review [J]. Research of Environmental Sciences, 2023,36(2):381-392. [88] Ali I, Ullah S, He L, et al. Combined application of biochar and nitrogen fertilizer improves rice yield, microbial activity and N-metabolism in a pot experiment [J]. PeerJ, 2020,8(3):e10311. [89] Blanco-Canqui H, Laird D A, Heaton E A, et al. Soil carbon increased by twice the amount of biochar carbon applied after 6 years: field evidence of negative priming [J]. GCB Bioenergy, 2020,12(4):240-251. [90] Wang L, Deng J, Yang X, et al. Role of biochar toward carbon neutrality [J]. Carbon Research. 2023,2(1):2. [91] Nan Q, Fang C, Cheng L, et al. Elevation of NO-3-N from biochar amendment facilitates mitigating paddy CH4 emission stably over seven years [J]. Environmental Pollution, 2022,295:118707. [92] Liu Y, Chen Y, Wang Y, et al. Negative priming effect of three kinds of biochar on the mineralization of native soil organic carbon [J]. Land Degradation & Development, 2018,29(11):3985-3994. [93] Alhashimi H A, Aktas C B. Life cycle environmental and economic performance of biochar compared with activated carbon: A meta-analysis [J]. Resources, Conservation and Recycling, 2017,118: 13-26. [94] Roe S, Streck C, Beach R, et al. Land-based measures to mitigate climate change: potential and feasibility by country [J]. Global Change Biology, 2021,27(23):6025-6058. [95] Zimmerman A R, Gao B, Ahn M. Positive and negative carbon mineralization priming effects among a variety of biochar-amended soils [J]. Soil Biology and Biochemistry, 2011,43(6):1169-1179. [96] Spokas K A, Koskinen W C, Baker J M, et al. Impacts of woodchip biochar additions on greenhouse gas production and sorption/degradation of two herbicides in a Minnesota soil [J]. Chemosphere, 2009,77(4):574-581. [97] Novak J M, Busscher W J, Watts D W, et al. Short-term CO2 mineralization after additions of biochar and switchgrass to a typic kandiudult [J]. Geoderma, 2010,154(3):281-288. [98] Wang J, Xiong Z, Kuzyakov Y. Biochar stability in soil: meta-analysis of decomposition and priming effects [J]. GCB Bioenergy, 2016,8(3):512-523. [99] Kalu S, Seppänen A, Mganga K Z, et al. Biochar reduced the mineralization of native and added soil organic carbon: evidence of negative priming and enhanced microbial carbon use efficiency [J]. Biochar, 2024,6(1):7. [100] Yang F, Zhang S, Song J, et al. Synthetic humic acids solubilize otherwise insoluble phosphates to improve soil fertility [J]. Angewandte Chemie International Edition, 2019,58(52):18813-18816. [101] Zhu X, Chen B, Zhu L, et al. Effects and mechanisms of biochar-microbe interactions in soil improvement and pollution remediation: a review [J]. Environmental Pollution, 2017,227:98-115. [102] He Y, Yao Y, Ji Y, et al. Biochar amendment boosts photosynthesis and biomass in C3 but not C4 plants: A global synthesis [J]. GCB Bioenergy, 2020,12(8):605-617. [103] Xiang Y, Deng Q, Duan H, et al. Effects of biochar application on root traits: a meta-analysis [J]. GCB Bioenergy, 2017,9(10):1563-1572. [104] 肖 婧,徐 虎,蔡岸冬,等.生物质炭特性及施用管理措施对作物产量影响的整合分析 [J]. 中国农业科学, 2017,50(10):1830-1840. Xiao J, Xu H, Cai A D, et al. A meta-analysis of effects of biochar properties and management practices on crop yield [J]. Scientia Agricultura Sinica, 2017,50(10):1827-1837. [105] Cornelissen G, Rutherford D W, Arp H P H, et al. Sorption of pure N2O to biochars and other organic and inorganic materials under anhydrous conditions [J]. Environmental Science & Technology, 2013, 47(14):7704-7712. [106] Creamer A E, Gao B, Zhang M. Carbon dioxide capture using biochar produced from sugarcane bagasse and hickory wood [J]. Chemical Engineering Journal, 2014,249:174-179. [107] Liu Q, Meki K, Zheng H, et al. Biochar application in remediating salt-affected soil to achieve carbon neutrality and abate climate change [J]. Biochar, 2023,5(1):45. [108] 张继宁,周 胜,孙会峰,等.生物质炭在我国蔬菜地应用的研究现状与展望 [J]. 农业现代化研究, 2018,39(4):543-550. Zhang J N, Zhou S, Sun H F, et al. Research progress and prospects on the biochar’s application in Chinese vegetable field [J]. Research of Agricultural Modernization, 2018,39(4):543-550. [109] 高诚祥,刘玉学,汪玉瑛,等.生物炭的稳定性及其对矿物改性的响应机制研究进展 [J]. 应用生态学报, 2019,9(30):3245-3251. Gao C X, Liu Y X, Wang Y Y, et al. Electrochemical study on the reduction of iron oxide minerals by microorganisms [J]. Chinese Journal of Applied Ecology, 2019,9(30):3245-3251. [110] Sun J, Lu X, Chen G, et al. Biochar promotes soil aggregate stability and associated organic carbon sequestration and regulates microbial community structures in Mollisols from northeast China [J]. Soil, 2023,9(1):261-275. [111] Mukherjee S, Sarkar B, Aralappanavar V K, et al. Biochar-microorganism interactions for organic pollutant remediation: challenges and perspectives [J]. Environmental Pollution, 2022,308: 119609. [112] Guan R, Wang L, Zhao Y, et al. The mechanism of DEHP degradation by the combined action of biochar and Arthrobacter sp. JQ-1: mechanisms insight from bacteria viability, degradation efficiency and changes in extracellular environment [J]. Chemosphere, 2023,341: 140093. [113] Cao X, Jien S, Yang C, et al. Innovative microbial immobilization strategy for Di-n-Butyl phthalate biodegradation using biochar-calcium alginate-waterborne polyurethane composites [Z]. 2024: 12(7):1265. [114] Feng F, Chen X, Wang Q, et al. Use of Bacillus-siamensis-inoculated biochar to decrease uptake of dibutyl phthalate in leafy vegetables [J]. Journal of Environmental Management, 2020,253:109636. [115] Liu Q, Chen H, Su Y, et al. Enhanced crude oil degradation by remodeling of crude oil-contaminated soil microbial community structure using sodium alginate/graphene oxide/Bacillus C5immobilized pellets [J]. Environmental Research, 2023,223:115465. [116] 李 莹.白腐真菌菌剂及固定化酶对多环芳烃-石油烃复合污染土壤的修复研究 [D]. 北京:北京建筑大学, 2023. Li Y. Remediation of polycyclic aromatic hydrocarbons-petroleum hydrocarbon compound contaminated soil by white rot fungi agents/immobilized enzymes [D]. Beijing: Beijing University of Civil Engineering and Architecture, 2023. [117] 李明旭.海带渣生物炭固载降解菌在PAHs污染土壤修复中的应用 [D]. 大连:大连理工大学, 2022. Li M X. Application of kelp residue biochar immobilized degrading bacteria in PAHs-contaminated soil remediation [D]. Dalian: Dalian University of Technology, 2022. [118] Chen C, Han X, Li X, et al. General features to enhance enzymatic activity of poly (ethylene terephthalate) hydrolysis [J]. Nature Catalysis, 2021,4(5):425-430. [119] Sagong H, Son H F, Seo H, et al. Implications for the PET decomposition mechanism through similarity and dissimilarity between PETases from Rhizobacter gummiphilus and Ideonella sakaiensis [J]. Journal of Hazardous Materials, 2021,416:126075. [120] Huang F, Li K, Wu R, et al. Insight into the Cd2+ biosorption by viable Bacillus cereus RC-1immobilized on different biochars: roles of bacterial cell and biochar matrix [J]. Journal of Cleaner Production, 2020,272:122743. [121] Fang G, Gao J, Liu C, et al. Key Role of persistent free radicals in hydrogen peroxide activation by biochar: implications to organic contaminant degradation [J]. Environmental Science & Technology, 2014,48(3):1902-1910. [122] Yu L, Yuan Y, Tang J, et al. Biochar as an electron shuttle for reductive dechlorination of pentachlorophenol by geobacter sulfurreducens [J]. Scientific Reports, 2015,5(1):16221. |
|
|
|