Skip to main content
Log in

Biochar mitigates effects of pesticides on soil biological activities

  • Mini Review
  • Published:
Environmental Sustainability Aims and scope Submit manuscript

Abstract

Several benefits of biochar on soil biological and chemical properties are known and demonstrated. Moreover, biochar application has also been discussed as an effective means to remediate soil polluted with toxic compounds as it has the capacity to adsorb the pollutants, especially the organic ones. Pesticides are commonly used in conventional agriculture as plant protection agents but are known to cause environmental hazards with diverse impacts including on the human health. Biochar amendments of soil may stabilize pesticides through sorption and thus reduce their bioavailability, bioaccumulation, biomagnification and ecotoxicity. Some reports found evidence for an increased microbial activity and diversity (after biochar amendment), which play an important role in the biodegradation of pesticides. An understanding of the effect of biochar on the bioavailability of pesticide residues in soil and biochar-microbe-pesticide interactions are necessary to explore the potential of biochar in pesticide-contaminated soils. Here we review the impact of biochar application on soil properties, microbial communities and pesticides, also highlighting future directions of research for biochar as a soil amendment for remediation of contaminated soils.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1

Similar content being viewed by others

References

  • Abujabhah IS, Bound SA, Doyle R, Bowman JP (2016) Effects of biochar and compost amendments on soil physico-chemical properties and the total community within a temperate agricultural soil. Appl Soil Ecol 98:243–253

    Google Scholar 

  • Akhil D, Lakshmi D, Kartik A, Vo DV, Arun J, Gopinath KP (2021) Production, characterization, activation and environmental applications of engineered biochar: a review. Environ Chem Lett. https://doi.org/10.1007/s10311-020-01167-7

    Article  Google Scholar 

  • Ahmad M, Rajapaksha AU, Lim JE, Zhang M, Bolan N, Mohan D, Vithanage M, Sang S (2014) Biochar as a sorbent for contaminant management in soil and water: a review. Chemosphere 99:19–33

    CAS  Google Scholar 

  • Ali N, Khan S, Li Y, Zheng N, Yao H (2019) Influence of biochars on the accessibility of organochlorine pesticides and microbial community in contaminated soils. Sci Total Environ 647:551–560

    CAS  Google Scholar 

  • Arora NK (2015) Plant microbe symbiosis: applied facets, 1st edn. Springer, New Delhi, p 381

    Google Scholar 

  • Arora NK (2018) Agricultural sustainability and food security. Environ Sustain 1:217–219

    Google Scholar 

  • Arora NK, Fatima T, Mishra I, Verma M, Mishra J, Mishra V (2018) Environmental sustainability: challenges and viable solutions. Environ Sustain 1(4):309–340

    Google Scholar 

  • Arora NK, Fatima T, Mishra I, Verma S (2020) Microbe-based Inoculants: role in next green revolution. In: Shukla V, Kumar N (eds) Environmental concerns and sustainable development. Springer, Singapore, pp 191–246

    Google Scholar 

  • Baćmaga M, Kucharski J (2015) Microbial and enzymatic activity of soil contaminated with azoxystrobin. Environ Monit Assess 187(10):615

    Google Scholar 

  • Chan YK, Van Zwieten L, Meszaros I, Downie A, Joseph S (2008) Using poultry litter biochars as soil amendments. Aust J Soil Res 46:437–444

    Google Scholar 

  • Chen Q, Liu H, Ko JH et al (2019) Structure characteristics of bio-char generated from co-pyrolysis of wooden waste and wet municipal sewage sludge. Fuel Process Technol 183:48–54

    CAS  Google Scholar 

  • Chew J, Zhu L, Nielsen S, Graber E, Mitchell DR, Horvat J et al (2020) Biochar-based fertilizer: supercharging root membrane potential and biomass yield of rice. Sci Total Environ 713:136431

    CAS  Google Scholar 

  • Cao CTN, Farrell C, Kristiansen PE, Rayner JP (2014) Biochar makes green roof substrates lighter and improves water supply to plants. Ecol Eng 71:368–374

    Google Scholar 

  • Cycoń M, Mrozik A, Piotrowska-Seget Z (2017) Bioaugmentation as a strategy for the remediation of pesticide-polluted soil. A review. Chemosphere 172:52–71

    Google Scholar 

  • Deng H, Feng D, He J-X, Li F-Z, Yu H-m, Ge C-j (2017) Influence of biochar amendments to soil on the mobility of atrazine using sorption-desorption and soil thin-layer chromatography. Ecol Eng 99:381–390

    Google Scholar 

  • Delwiche KB, Lehmann J, Walter MT (2014) Atrazine leaching from biochar-amended soils. Chemosphere 95:346–352

    CAS  Google Scholar 

  • Dos Santos EV, Sáez C, Martínez-Huitle CA, Cañizares P, Rodrigo MA (2015) Combined soil washing and CDEO for the removal of atrazine from soils. J Hazard Mater 300:129–134

    CAS  Google Scholar 

  • Egamberdieva D, Wirth S, Behrendt U, Abd-Allah EF, Berg G (2016) Biochar treatment resulted in a combined effect on soybean growth promotion and a shift in plant growth promoting rhizobacteria. Front Microb 7:1–11

    Google Scholar 

  • Egamberdieva D, Reckling M, Wirth S (2017) Biochar-based inoculum of Bradyrhizobium sp. improves plant growth and yield of lupin (Lupinus albus L.) under drought stress. Eur J Soil Biol 78:38–42

    CAS  Google Scholar 

  • Egamberdieva D, Ma H, Reckling M, Wirth S, Bellingrath-Kimura SD (2018) Potential effects of biochar-based microbial inoculants in agriculture. Environ Sustain 1:19–24

    Google Scholar 

  • Egamberdieva D, Li L, Ma H, Wirth S, Bellingrath-Kimura SD (2019a) Soil amendment with different maize biochars improves chickpea growth under different moisture levels by improving symbiotic performance with Mesorhizobium ciceri and soil biochemical properties to varying degrees. Front Microbiol 10:2423. https://doi.org/10.3389/fmicb.2019.02423

    Article  Google Scholar 

  • Egamberdieva D, Reckling M, Wirth S (2019b) Biochar-based inoculum of Bradyrhizobium sp. improves plant growth and yield of lupin (Lupinus albus L.) under drought stress. Eur J Soil Biol 78:38–42

    Google Scholar 

  • Egamberdieva D, Ma H, Reckling M, Alimov J, Wirth S, Bellingrath-Kimura SD (2020a) Response of soybean to hydrochar-based rhizobium inoculation in loamy sandy soil. Microorganisms 8(11):1674

    CAS  Google Scholar 

  • Egamberdieva D, Alaylar B, Shurigin V, Ma H, Wirth S, Bellingrath-Kimura SD (2020b) The effect of biochars and endophytic bacteria on growth and root rot disease incidence of Fusarium infested narrow-leafed lupin (Lupinus angustifolius L.). Microorganisms 8(4):496

    CAS  Google Scholar 

  • Falciglia PP, De Guidi G, Catalfo A, Vagliasindi FGA (2016) Remediation of soils contaminated with PAHs and nitro-PAHsusing microwave irradiation. Chem Eng J 296:162–172

    CAS  Google Scholar 

  • Feld L, Hjelmsø MH, Nielsen MS, Jacobsen AD, Rønn R, Ekelund F, Krogh PH, Strobel BW, Jacobsen CS (2015) Pesticide side effects in an agricultural soil ecosystem as measured by amoA expression quantification and bacterial diversity changes. PLoS One 10(5):e0126080

    Google Scholar 

  • Frankel ML, Bhuiyan TI, Veksha A, Demeter MA, Layzell DB et al (2016) Removal and biodegradation of naphthenic acids by biochar and attached environmental biofilms in the presence of co-contaminating metals. Bioresour Technol 216:352–361

    CAS  Google Scholar 

  • Fulekar MH (2009) Bioremediation of fenvalerate by Pseudomonas aeruginosa in a scale upbioreactor. Roman Biotechnol Lett 14(6):4900–4905

    CAS  Google Scholar 

  • Gámiz B, López-Cabeza R, Facenda G, Velarde P, Hermosín MC, Cox L, Celis R (2016) Effect of synthetic clay and biochar addition on dissipation and enantioselectivity of tebuconazole and metalaxyl in an agricultural soil: laboratory and field experiments. Agric Ecosyst Environ 230:32–41

    Google Scholar 

  • Gao YP, Fang JG, Zhang JH, Ren LH, Mao YZ, Li B, Zhang ML, Liu DH, Du MR (2011) The impact of the herbicide atrazine on growth and photosynthesis of seagrass, Zostera marina (L.), seedlings. Mar Pollut Bull 62:1628–1631

    CAS  Google Scholar 

  • Graber ER, Meller Harel Y, Kolton M, Cytryn E, Silber A, David DR, Tsechansky L, Borenshtein M, Elad Y (2010) Biochar impact on development and productivity of pepper and tomato grown in fertigated soilless media. Plant Soil 337:481–496

    CAS  Google Scholar 

  • Guo M, Song W, Tian J (2020) Biochar-facilitated soil remediation: mechanisms and efficacy variations. Front Environ Sci 8:521512

    Google Scholar 

  • Heath E, Scancar J, Zuliani T, Milacic R (2010) A complex investigation of the extent of pollutionin sediments of the Sava River: Part 2: Persistent organic pollutants. Environ Monit Assess 163:277–293

    CAS  Google Scholar 

  • He K, He G, Wang C, Zhang H, Xua Y, Wang S, Kong Y, Zhou G, Hu R (2020) Biochar amendment ameliorates soil properties and promotes Miscanthus growth in a coastal saline-alkali soil. Appl Soil Ecol 155:103674

    Google Scholar 

  • Huang H, Reddy NG, Huang X, Chen P, Wang P, Zhang Y, Huang Y, Lin P, Garg A (2021) Effects of pyrolysis temperature, feedstock type and compaction on water retention of biochar amended soil. Sci Rep 11:7419

    CAS  Google Scholar 

  • Hurley PM, Hill RN, Whiting RJ (1998) Mode of carcinogenic action of pesticides inducing thyroid follicular cell tumours in rodents. Environ Health Perspect 106:437

    CAS  Google Scholar 

  • Irfan M, Hussain Q, Khan KS, Akmal M, Ijaz SS, Hayat R, Khalid A, Azeem M, Rashid M (2019) Response of soil microbial biomass and enzymatic activity to biocharamendment in the organic carbon deficient arid soil: a 2-year field study. Arab J Geosci 12:95

    Google Scholar 

  • Jablonowski ND, Borchard N, Zajkoska P, Fernández-Bayo JD, Martinazzo R, Berns AE, Burauel P (2013) Biochar-mediated 14 C-atrazine mineralization in atrazine-adapted soils from Belgium and Brazil. J Agric Food Chem 61:512–516

    CAS  Google Scholar 

  • Jones DL, Jones GE, Murphy DV (2011) Biochar mediated alternations in herbicide breakdown and leaching in soil. Soil Biol Biochem 43:804–813

    CAS  Google Scholar 

  • Khalid M, Shahid B, Murtaza I, Bibi NM, Asif Naeem N, Niazi K (2019) Acritical review of different factors governing the fate of pesticides in soil under biochar application. Sci Total Environ 711:134645. https://doi.org/10.1016/j.scitotenv.2019.134645

    Article  CAS  Google Scholar 

  • Khorram MS, Zheng Y, Lin D, Zhang Q, Fang H, Yu Y (2016) Dissipation of fomesafenin biochar-amended soil and its availability to corn (Zea mays L.) and earthworm (Eisenia fetida). J Soils Sediments16:2439–2448

    Google Scholar 

  • Kim HS, Kim RK, Yang JE, OK YS, Owens G, Nehls J, Wessolek G, Kim KH (2016) Effect of biochar on reclaimed tidal land soil properties and maize (Zea mays L.) response. Chemosphere 142:153–159

    CAS  Google Scholar 

  • Lehmann J, Kuzyakov Y, Pan G, OK YS (2015) Biochars and the plant-soil interface. Plant Soil 395:1–5

    CAS  Google Scholar 

  • Lim TJ, Spokas KA, Feyereisen G, Novak JM (2016) Predicting the impact of biochar additions on soil hydraulic properties. Chemosphere 142:136–144

    CAS  Google Scholar 

  • Liu Y, Lonappan L, Brar SK, Yang S (2018) Impact of biochar amendment in agricultural soils on the sorption, desorption, and degradation of pesticides: A review. Sci Total Environ 645:60–70

    CAS  Google Scholar 

  • Ma H, Egamberdieva D, Wirth S, Li Q, Omari RA, Hou M, Bellingrath-Kimura SD (2019a) Effect of biochar and irrigation on the interrelationships among soybean growth, root nodulation, plant P uptake, and soil nutrients in a sandy field. Sustainability 11(23):6542

    CAS  Google Scholar 

  • Ma H, Egamberdieva D, Wirth S, Bellingrath-Kimura SD (2019b) Effect of biochar and irrigation on soybean-rhizobium symbiotic performance and soil enzymatic activity in field rhizosphere. Agronomy 9(10):626

    CAS  Google Scholar 

  • Meng L, Sun T, Li M, Saleem M, Zhang Q, Wang C (2019) Soil-applied biochar increases microbial diversity and wheat plant performance under herbicide fomesafen stress. Ecotoxicol Environ Saf 171:75–83

    CAS  Google Scholar 

  • Mishra I, Arora NK (2019) Rhizoremediation: A Sustainable Approach to Improve the Quality and Productivity of Polluted Soils. In: Arora N, Kumar N (eds) Phyto and Rhizo Remediation. Microorganisms for Sustainability, vol 9. Springer, Singapore, pp 33–66

    Google Scholar 

  • Novak JM, Busscher WJ, Laird DL, Ahmedna M, Watts DW, Niandou MA (2009) Impact of biochar amendment on fertility of a southeastern coastal plain soil. Soil Sci 174(2):105–112

    CAS  Google Scholar 

  • Novak JM, Busscher WJ, Watts DW, Amonette JE, Ippolito JA, Lima IM, Gaskin J, Das KC, Steiner C, Ahmedna M, Rehrah D, Schomberg H (2012) Biochars impact on soil-moisture storage in an ultisol and two aridisols. Soil Sci 177:310–320

    CAS  Google Scholar 

  • Qiu Y, Pang H, Zhou Z, Zhang P, Feng, Sheng DG (2009) Competitive biodegrada-tion of dichlobenil and atrazine coexisting in soil amended with a char and citrate. Environ Pollut 157:2964–2969

    CAS  Google Scholar 

  • Palansooriya KN, Wong JTF, Hashimoto Y, Huang L, Rinklebe J, Chang SX, Bolan N, Wang H, Ok YS (2019) Response of microbial communities to biochar-amended soils: a critical review. Biochar 1:3–22

    Google Scholar 

  • Panahi HKS, Dehhaghi M, Ok YS et al (2020) A comprehensive review of engineered biochar: production, characteristics, and environmental applications. J Clean Prod. https://doi.org/10.1016/j.jclepro.2020.122462

    Article  Google Scholar 

  • Parween T, Bhandari P, Sharma R, Jan S, Siddiqui ZH, Patanjali PK (2018) Bioremediation: a sustainable tool to prevent pesticide pollution. In: Oves M, Zain Khan M, Ismail IMI (eds) Modern age environmental problems and their remediation. Springer, Cham, pp 215–227

    Google Scholar 

  • Pei J, Zhuang S, Cui J, Li J, Li B, Wu J, Fang C (2017) Biochar decreased the temperature sensitivity of soil carbon decomposition in a paddy field. Agric Ecosyst Environ 249:156–164

    CAS  Google Scholar 

  • Rissato SR, Galhiane MS, Fernandes JR, Gerenutti M, Gomes HM, Ribeiro R, de Almeid a MV, (2015) Evaluation of Ricinus communis L. for the phytoremediation of polluted soil with organochlorine pesticides. Biomed Res Int 2:1–8

    Google Scholar 

  • Sheng Y, Zhu L (2018) Biochar alters microbial community and carbon sequestration potential across different soil pH. Sci Total Environ 622:1391–1399

    Google Scholar 

  • Silva VP, Moreirasantos M, Mateus C, Teixeira T, Rui R, Viegas CA (2015) Evaluation of Arthrobacter aurescens strain TC1 as bioaugmentation bacterium in soils contaminated with the herbicidal substance terbuthylazine. PLoS One 10(12):e0144978

    Google Scholar 

  • Singh A, Sharma R, Pant D, Malaviya P (2021) Engineered algal biochar for contaminant remediation and electrochemical applications. Sci Total Environ 774: https://doi.org/10.1016/j.scitotenv.2021.145676

    Article  CAS  Google Scholar 

  • Shakya A, Agarwal I (2017) Poultry Litter Biochar: An approach towards poultry litter management–a review. Int J Curr Microbiol App Sci 6(10):2657–2668

    Google Scholar 

  • Strobel KL, McGowan S, Bauer RD, Griebler C, Liu J, Ford RM (2011) Chemotaxis increases vertical migration and apparent transverse dispersion of bacteria in a bench-scale microcosm. Biotechnol Bioeng 108(9):2070–2077

    CAS  Google Scholar 

  • Sun T, Levin B, Guzman J, Enders A, Muller DA et al (2017) Rapid electron transfer by the carbon matrix in natural pyrogenic carbon. Nat Commun 8:14873

    CAS  Google Scholar 

  • Sun S, Sidhu V, Rong Y, Zheng Y (2018) Pesticide pollution in agricultural soils and sustainable remediation methods: A review. Curr Pollution Rep 4:240–250

    CAS  Google Scholar 

  • Tan X, Liu Y, Zen G, Wang X, Hu X, Gu Y, Yang Z (2015) Application of biochar for the removal of pollutants from aqueous solutions. Chemosphere 125:70–85

    CAS  Google Scholar 

  • Tang J, Zhang S, Zhang X, Chen J, He X, Zhang Q (2020) Effects of pyrolysis temperature on soil-plant-microbe responses to Solidago canadensis L. derived biochar in coastal saline-alkali soil. Sci Total Environ 731:138938

    CAS  Google Scholar 

  • Tatarková V, Hiller E, Vaculík M (2013) Impact of wheat straw biochar addition to soilon the sorption, leaching, dissipation of the herbicide (4-chloro-2-methylphenoxy) acetic acid and the growth of sunflower (Helianthus annuus L.). Ecotoxicol Environ Saf 92:215–221

    Google Scholar 

  • Uchimiya M, Wartelle LH, Lima IM, Klasson KT (2010) Sorption of deisopropylatrazine on broiler litter biochars. J Agric Food Chem 58:12350–12356

    CAS  Google Scholar 

  • Wu H, Lai C, Zeng G, Liang J, Chen J, Xu J, Dai J, Li X, Liu J, Chen M, Lu L, Hu L van J (2017) The interactions of composting and biochar and their implications for soil amendment and pollution remediation: a review. Crit Rev Biotechnol 37(6):754–764

    CAS  Google Scholar 

  • Yang YN, Sheng GY (2003) Enhanced pesticide sorption by soils containing particulate matter from crop residue burns. Environ Sci Technol 37:3635–3639

    CAS  Google Scholar 

  • Yang XB, Ying GG, Peng PA, Wang L, Zhao JL, Zhang LJ, Yuan P, He HP (2010) Influence of biochars on plant uptake and dissipation of two pesticides in an agricultural soil. J Agric Food Chem 58(13):7915–7921

    CAS  Google Scholar 

  • Yu XY, Ying GG, Kookana RS (2009) Reduced plant uptake of pesticides with biochar additions to soil. Chemosphere 76(5):665–671

    CAS  Google Scholar 

  • Yu XY, Ying GG, Kookana RS (2006) Sorption and desorption behaviors of diuron in soils amended with charcoal. J Agric Food Chem 54:8545–8550

    CAS  Google Scholar 

  • Yu OY, Raichle B, Sink S (2013) Impact of biochar on the water holding capacity of loamy sand soil. Int J Energy Envir Eng 4:44

    Google Scholar 

  • Yuan P, Wang J, Pan Y, Shen B, Wu C (2019) Review of biochar for the management of contaminated soil: preparation, application and prospect. Sci Total Environ 659:473–490

    CAS  Google Scholar 

  • Zhang P, Sun HW, Yu L, Sun TH (2013) Adsorption and catalytic hydrolysis of carbaryl and atrazine on pig manure-derived biochars: impact of structural properties of biochars. J Hazard Mater 244:217–224

    Google Scholar 

  • Zhang Q, Zhu L, Wang J, Xie H, Wang J, Wang F (2014) Sun Effects of fomesafen on soil enzyme activity, microbial population, and bacterial community composition. Environ Monit Assess 186:2801–2812

    CAS  Google Scholar 

  • Zhang P, Sun H, Min L, Ren C (2018) Biochars change the sorption and degradation of thiacloprid in soil: insights into chemical and biological mechanisms. Environ Pollut 236:158–167

    CAS  Google Scholar 

  • Zhou Y, Liu S, Liu Y, Tan X, Liu N, Wen J (2020) Efficient removal 17-Estradiol by Graphene-Like magnetic sawdust biochar: preparation condition and adsorption mechanism. Int J Environ Res Public Health 17(22):8377

    CAS  Google Scholar 

  • Zhu X, Chen B, Zhu L, Xing B (2017) Effects and mechanisms of biochar-microbe interactions in soil improvement and pollution remediation: a review. Environ Pollut 227:98–115

    CAS  Google Scholar 

Download references

Acknowledgement

NKA is thankful to Department of Science and Technology (DST), New Delhi, India (Grant number INT/UZBEK/P-18) and DE to the Ministry of Innovative Development of the Republic of Uzbekistan (Grant UZB-Ind-2021-93) for support.

Author information

Authors and Affiliations

Authors

Corresponding authors

Correspondence to Dilfuza Egamberdieva or Naveen Kumar Arora.

Ethics declarations

Conflict of interest

The authors declare no conflict of interest.

Ethical statement

This Manuscript does not contain any studies with human participants or animals performed by any of the authors.

Additional information

Publisher’s Note

Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Egamberdieva, D., Jabbarov, Z., Arora, N.K. et al. Biochar mitigates effects of pesticides on soil biological activities . Environmental Sustainability 4, 335–342 (2021). https://doi.org/10.1007/s42398-021-00190-w

Download citation

  • Received:

  • Revised:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s42398-021-00190-w

Keywords

Navigation