|Table of Contents|

Research Progress on the Improvement of Pepper Planting Field Soil by Biochar and Biochar Based Fertilizers

《北方园艺》[ISSN:1001-0009/CN:23-1247/S]

Issue:
2025年9
Page:
138-145
Research Field:
Publishing date:

Info

Title:
Research Progress on the Improvement of Pepper Planting Field Soil by Biochar and Biochar Based Fertilizers
Author(s):
LIU ZechangMEI AoCHEN RensongHU Meizhong
(Tongren Polytechnic College,Tongren,Guizhou 554300)
Keywords:
pepperbiocharbiochar based fertilizerpassivation of heavy metalsoil improvement
PACS:
S 641
DOI:
10.11937/bfyy.20244817
Abstract:
The soil properties of planting field are important factors affecting the growth and development of pepper,as well as the yield and quality.The recent research progress of biochar and biochar based fertilizer on heavy metal passivation and soil property improvement in planting field soil were systematically reviewed,the passivation effects of different biochar and biochar based fertilizer on different heavy metals,and the improvement effects on soil pH,organic matter content and biological properties were compared,in order to provide reference for the application and research of biochar and biochar based fertilizer in the improvement of pepper planting field.In the future,long-term studies should be further carried out on the soil of different pepper planting fields,and the types and sources of biochar raw materials,preparation technology,and mixed application ratio with other components should be determined.It is an effective means to effectively improve pepper planting fields by using biochar and biochar based fertilizer,and will play a positive role in increasing production and improving quality of pepper.

References:

[1]王立浩,张宝玺,张正海,等.辣椒遗传育种研究进展[J].园艺学报,2020,47(9):1727-1740.[2]邹学校,马艳青,戴雄泽,等.辣椒在中国的传播与产业发展[J].园艺学报,2020,47(9):1715-1726.[3]黄阔,张永强,刘烈花,等.辣椒主要病害田间诊断及发生规律[J].植物医生,2020(1):69-71.[4]生态环境部.2021年中国生态环境状况公报(摘录)[J].环境保护,2022,50(12):61-74.[5]LI Y L,RAHMAN S U,QIU Z X,et al.Toxic effects of cadmium on the physiological and biochemical attributes of plants,and phytoremediation strategies:A review[J].Environmental Pollution,2023,325:121433.[6]曾庆庆,付天岭,邹洪琴,等.贵州省某县辣椒种植区土壤重金属空间分布特征及来源解析[J].农业环境科学学报,2021,40(1):102-113.[7]黄昀,刘光德,李其林,等.农产品对土壤中重金属的富集能力研究[J].中国农学通报,2004,20(6):285-289.[8]谈敏,高海军,陈相波,等.辣椒吸收富集镉研究进展[J].长江蔬菜,2020(8):45-48.[9]LEHMANN J,PEREIRA D S J,STEINER C,et al.Nutrient availability and leaching in an archaeological anthrosol and a ferralsol of the central amazon basin:Fertilizer,manure and charcoal amendments[J].Plant and Soil,2003,249(2):343-357.[10]龙杰琦,苗淑杰,李娜,等.施用生物炭对黑土各组分有机质结构的影响[J].植物营养与肥料学报,2022,28(5):775-785.[11]SACHDEVA S,KUMAR R,SAHOO P K,et al.Recent advances in biochar amendments for immobilization of heavy metals in an agricultural ecosystem:A systematic review[J].Environmental Pollution,2023,319:120937.[12]SINGH YADAV S P,BHANDARI S,BHATTA D,et al.Biochar application:A sustainable approach to improve soil health[J].Journal of Agriculture and Food Research,2023(11):100498.[13]李妍琦,吴奇,宫福征,等.鸟粪石基载镁生物炭对干湿交替稻田产量与品质的影响[J].农业工程学报,2024,40(4):91-103.[14]魏彦凤,王继涛,李文慧,等.凹凸棒土-生物炭缓释材料对养分缓释及小白菜生长的影响[J].农业工程学报,2023,39(22):121-132.[15]张丰,刘畅,王喆,等.不同吸附特性的稻草生物炭对稻田氨挥发和水稻产量的影响[J].农业工程学报,2021,37(9):100-109.[16]YUAN J H,XU R K,ZHANG H.The forms of alkalis in the biochar produced from crop residues at different temperatures[J].Bioresource Technology,2011,102(3):3488-3497.[17]GASKIN J W,STEINER C,HARRIS K,et al.Effect of low-temperature pyrolysis conditions on biochar for agricultural use[J].Transactions of the ASABE,2008,51(6):2061-2069.[18]MIZUTA K,MATSUMOTO T,HATATE Y,et al.Removal of nitrate-nitrogen from drinking water using bamboo powder charcoal[J].Bioresource Technology,2004,95(3):255-257.[19]周丽娜,张丽娟,朱倩楠,等.添加物与C/N协同调控柠条复配基质对番茄幼苗生长发育的影响[J].北方园艺,2023(16):1-9.[20]LEHMANN J,RILLIG M C,THIES J,et al.Biochar effects on soil biota:A review[J].Soil Biology and Biochemistry,2011,43(9):1812-1836.[21]HE L,ZHONG H,LIU G,et al.Remediation of heavy metal contaminated soils by biochar:Mechanisms,potential risks and applications in China[J].Environmental Pollution,2019,252:846-855.[22]黄庆,刘忠珍,朱根发,等.生物质炭基肥料及作物施用技术研究进展[J].广东农业科学,2021,48(1):26-34.[23]YU X,TIAN X,LU Y,et al.Combined effects of straw-derived biochar and bio-based polymer-coated urea on nitrogen use efficiency and cotton yield[J].Chemical Speciation & Bioavailability,2018,30(1):112-122.[24]JEFFERY S,VERHEIJEN F G A,VAN DER VELDE M,et al.A quantitative review of the effects of biochar application to soils on crop productivity using meta-analysis[J].Agriculture,Ecosystems & Environment,2011,144(1):175-187.[25]LUO L,GU J D.Alteration of extracellular enzyme activity and microbial abundance by biochar addition:Implication for carbon sequestration in subtropical mangrove sediment[J].Journal of Environmental Management,2016,182:29-36.[26]PETER H,SOMMARUGA R.Shifts in diversity and function of lake bacterial communities upon glacier retreat[J].The ISME Journal,2016,10(7):1545-1554.[27]喻成龙,汤建,喻惟,等.翻压紫云英条件下化肥配施生物炭基肥对水稻Cu吸收转运的影响[J].农业环境科学学报,2019,38(9):2095-2102.[28]刘冲.生物炭基肥对水稻土中Cd、Cu、Pb和Zn的钝化效应研究[D].兰州:兰州大学,2016.[29]王正,孙兆军,SAMEH E S,等.浒苔生物炭与木醋液复配改良碱化土壤效果及提高油葵产量[J].环境科学,2021,42(12):6078-6090.[30]LASHARI M S,LIU Y,LI L,et al.Effects of amendment of biochar-manure compost in conjunction with pyroligneous solution on soil quality and wheat yield of a salt-stressed cropland from Central China Great Plain[J].Field Crops Research,2013,144:113-118.[31]肖健,谭俊杰,林泽毅,等.木醋液的抑菌活性及其对连作番茄根际土壤微环境生态的影响[J].华中农业大学学报,2024,43(1):40-51.[32]付彦博,冷冰冰,扁青永,等.生物炭和油菜幼苗对土壤重金属镉污染的钝化效应[J].中国农业科技导报,2024,26(6):183-190.[33]宋小旺.铁锰氧化物生物炭吸附/钝化镉研究[D].广州:广东工业大学,2020.[34]邹佳慧,林青,邵明艳,等.生物炭影响下土壤中铜镉锌复合污染物的淋溶迁移[J].环境科学学报,2023,43(9):333-345.[35]汪丹,周伟,张阳阳,等.土壤调理剂对重度镉污染土壤改良及农作物吸收累积镉的影响[J].安徽农业科学,2024,52(2):73-76.[36]牟叶果.贵阳市典型中度镉污染农田辣椒安全种植技术研究[D].贵阳:贵州师范大学,2022.[37]毛磊.功能化活性炭对固相基质重金属的增强稳定作用及其机理研究[D].武汉:武汉科技大学,2015.[38]刘小屿,沈根祥,钱晓雍,等.不同钝化剂对畜禽粪便有机肥重金属铜锌的钝化作用[J].江苏农业科学,2017,45(13):209-213.[39]文雄,范成五,韩茂德,等.炭基及硅酸盐类钝化剂对辣椒地土壤中度Cd污染效应研究[J].中国农学通报,2022,38(15):98-104.[40]徐艳,王曙光,李娟.生物炭对矿区重金属污染土壤养分影响及修复效果[J].西部大开发(土地开发工程研究),2019,4(11):33-37,53.[41]柴冠群,张秀锦,张容慧,等.生物炭与不同形态氮肥配施对辣椒产量、品质及镉吸收的影响[J].园艺学报,2023,50(3):549-558.[42]陈玲桂.生物炭输入对农田土壤重金属迁移的影响研究[D].杭州:浙江大学,2013.[43]谢杰,陈院华,徐昌旭,等.紫云英长期还田对稻田土壤DOM和Cd形态影响研究[J].生态环境学报,2024,33(7):1096-1106.[44]詹绍军,喻华,冯文强,等.有机物料与石灰对土壤pH和镉有效性的影响[J].西南农业学报,2011,24(3):999-1003.[45]张彦娟,章明奎.组配钝化剂对复合污染蔬菜地土壤重金属的钝化效果[J].江西农业学报,2020,32(10):121-124,130.[46]杨滨瑞.生物炭在盐碱地改良中的应用分析[J].黑龙江环境通报,2024,37(6):51-53.[47]YAN P,SHEN C,ZOU Z H,et al.Biochar stimulates tea growth by improving nutrients in acidic soil[J].Scientia Horticulturae,2021,283:110078.[48]张宝轩,王月铭,陈思涵,等.生物炭对苹果园地土壤理化性质及果实品质的影响[J].北方园艺,2024(13):82-91.[49]CHEW J,ZHU L,NIELSEN S,et al.Biochar-based fertilizer:Supercharging root membrane potential and biomass yield of rice[J].Science of the Total Environment,2020,713:136431.[50]徐孟泽,梁敏,李苗苗,等.炭基肥与化肥配施对生菜产量与品质的影响[J].农学学报,2020,10(7):45-49.[51]王光飞,马艳,郭德杰,等.不同用量秸秆生物炭对辣椒疫病防控效果及土壤性状的影响[J].土壤学报,2017,54(1):204-215.[52]王光飞,马艳,郭德杰,等.秸秆生物炭对辣椒疫病的防控效果及机理研究[J].土壤,2015,47(6):1107-1114.[53]ATKINSON C J,FITZGERALD J D,HIPPS N A.Potential mechanisms for achieving agricultural benefits from biochar application to temperate soils:A review[J].Plant and Soil,2010,337(1):1-18.[54]MEHMOOD S,AHMED W,ALATALO J M,et al.A systematic review on the bioremediation of metal contaminated soils using biochar and slag:Current status and future outlook[J].Environmental Monitoring and Assessment,2023,195(8):961.[55]SINGH YADAV S P,BHANDARI S,BHATTA D,et al.Biochar application:A sustainable approach to improve soil health[J].Journal of Agriculture and Food Research,2023(11):100498.[56]LIU M,TAN X,ZHENG M,et al.Modified biochar/humic substance/fertiliser compound soil conditioner for highly efficient improvement of soil fertility and heavy metals remediation in acidic soils[J].Journal of Environmental Management,2023,325:116614.

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Last Update: 2025-05-19