[1]ZANDI P M,XIA X,YANG J J,et al. Speciation and distribution of chromium( Ⅲ ) in rice root tip and mature zone:The significant impact of root exudation and iron plaque on chromium bioavailability[J].Journal of Hazardous Materials,2023,448:130992.
[2]WANG H F,GAO Y,HU W Y,et al. Health management of Cd‑contaminated soil using Ca‑Al layered double hydroxide:Response of different vegetables[J]. Agriculture,Ecosystems & Environment,2023,356:108631.
[3]SHITTU A. Effects of hydrolyzed oat bran proteins on free radicals,toxic metals and lipid oxidation[D].Ottawa:Carleton University,2017.
[4]殷雨竹,樊彦国,潘瑜春,等. 北京地区大气重金属沉降污染特征与风险评价[J]. 中国环境科学,2023,43(6):2763‑2776.
YIN Y Z,FAN Y G,PAN Y C,et al. Pollution characteristics and risk assessment of atmospheric heavy metal deposition in Beijing[J]. China Environmental Science,2023,43(6):2763‑2776.
[5]SOHAIL M I,ARIF M,RAUF A,et al. Organic manures for cadmium tolerance and remediation[M].Amsterdam:Academic Press,2019:19‑67.
[6]PAUL S,KAUSER H,JAIN M S,et al. Biogenic stabilization and heavy metal immobilization during vermicomposting of vegetable waste with biochar amendment[J]. Journal of Hazardous Materials,2020,390:121366.
[7]MA W Y,SUN T,XU Y M,et al. In‑situ immobilization remediation,soil aggregate distribution,and microbial community composition in weakly alkaline Cd‑contaminated soils:A field study[J]. Environmental Pollution,2022,292:118327.
[8]DENG A N,WU X F,SU C L,et al. Enhancement of soil microstructural stability and alleviation of aluminium toxicity in acidic latosols via alkaline humic acid fertiliser amendment[J]. Chemical Geology,2021,583:120473.
[9]HAN L W,ZHAO Z J,LI J,et al. Application of humic acid and hydroxyapatite in Cd‑contaminated alkaline maize cropland:A field trial[J]. Science of the Total Environment,2023,859:160315.
[10]吴翔. 虫粪有机肥对污染土壤上水稻生长及重金属迁移转化积累影响的研究[D]. 天津:天津农学院,2020.
WU X. Effects of insect manure organic fertilizer on rice growth and heavy metal migration,transformation and accumulation in polluted soil[D]. Tianjin:Tianjin Agricultural University,2020.
[11]PAVLÍKOVÁ D,PAVLÍK M,ZEMANOVÁ V,et al.Accumulation of toxic arsenic by cherry radish Tuber(Raphanus sativus var. sativus Pers.)and its physiological, metabolic and anatomical stress responses[J].Plants,2023,12(6):1257.
[12]邹素敏,杜瑞英,文典,等. 不同品种蔬菜重金属污染评价和富集特征研究[J].生态环境学报,2017,26(4):714‑720.
ZOU S M,DU R Y,WEN D,et al. Enrichment characteristics analysis and assessment on heavy metal contamination of different vegetables[J]. Ecology and Environmental Sciences,2017,26(4):714‑720.
[13]王子豪,梁红怡,张冬寒,等. 中国设施土壤重金属累积特征与污染阻控技术研究进展[J]. 农业工程学报,2024,40(9):1‑14.
WANG Z H,LIANG H Y,ZHANG D H,et al.Accumulation characteristics and control technologies of heavy metal contamination in facility soil of China:A review[J].Transactions of the Chinese Society of Agricultural Engineering,2024,40(9):1‑14.
[14]中华人民共和国农业部. 土壤有机质测定法:NY/T 85—1988[S]. 北京:中国标准出版社,1988.
Ministry of Agriculture of the People’s Republic of China. Determination of organic matter in soil:NY/T 85—1988[S]. Beijing:China Standards Press,1988.
[15]中华人民共和国生态环境部. 土壤和沉积物19种金属元素总量的测定电感耦合等离子体质谱法:HJ1315—2023[S]. 北京:中国环境科学出版社,2023.
Ministry of Ecology and Environment of the People’s Republic of China. Determination of total 19 metal elements in soil and sediment by inductively coupled plasma mass spectrometry:HJ 1315—2023[S].Beijing:China Environmental Science Press,2023.
[16]河北省质量技术监督局. 土壤速效氮测定:DB13/T 843—2007[S]. 石家庄:河北省质量技术监督局,2007.
Hebei Provincial Bureau of Quality and Technical Supervision. Determination of readily available nitrogen in soil:DB13/T 843—2007[S].Shijiazhuang:Hebei Provincial Bureau of Quality and Technical Supervision,2007.
[17]中华人民共和国环境保护部. 土壤有效磷的测定碳酸氢钠浸提‑钼锑抗分光光度法:HJ 704—2014[S].北京:中国环境科学出版社,2014.
Ministry of Environmental Protection of the People’s Republic of China. Determination of available phosphorus in soil by sodium bicarbonate leaching‑molybdenum‑antimony‑anti‑spectrophotometric method: HJ 704—2014[S]. Beijing:China Environmental Science Press,2014.
[18]国家卫生和计划生育委员会,国家食品药品监督管理总局. 食品安全国家标准食品中多元素的测定:GB 5009.268—2016[S]. 北京:中国标准出版社,2017.
National Health and Family Planning Commission,State Food and Drug Administration. National food safety standard—Determination of multiple elements in food: GB 5009. 268—2016[S]. Beijing:China Standards Press,2017.
[19]MENG H Q,XU M G,LÜ J,et al.Soil pH dynamics and nitrogen transformations under long‑term chemical fertilization in four typical Chinese croplands[J].Journal of Integrative Agriculture,2013,12(11):2092‑2102.
[20]KIM H N,PARK J H. Monitoring of soil EC for the prediction of soil nutrient regime under different soil water and organic matter contents [J]. Applied Biological Chemistry,2024,67(1):1.
[21]周诗玉. 白星花金龟虫粪砂对黄芩生长、品质和土壤性状的影响[D].呼和浩特:内蒙古农业大学,2024.
ZHOU S Y.Effects of dung and sand of Scarabaeid beetle on growth,quality and soil properties of Scutellaria baicalensis Georgi[D]. Hohhot:Inner Mongolia Agricultural University,2024.
[22]俞海,黄季焜,Scott ROZELLE,等.中国东部地区耕地土壤肥力变化趋势研究[J]. 地理研究,2003,22(3):380‑388.
YU H,HUANG J K,ROZELLE S,et al. Soil fertility changes of cultivated land in Eastern China[J]. Geographical Research,2003,22(3):380‑388.
[23]WANG X B,WU N,WU X,et al. Effect of insect feces(Hermetia illucens) on rice growth and heavy metal migration from polluted soil to rice plant[J].Environmental Science and Pollution Research International,2022,29(10):14695‑14704.
[24]潘荣庆,蓝淯琛,何卿姮,等. 不同水稻品种及阻控剂对水稻各部位累积镉的影响[J]. 江苏农业科学,2023,51(2):247‑252.
PAN R Q,LAN Y C,HE Q H,et al. Influences of different rice varieties and blocking agents on accumulation of cadmium in various parts of rice[J].Jiangsu Agricultural Sciences,2023,51(2):247‑252.
[25]SUN L,SUN Z X,OPOKU‑KWANOWAA Y,et al.Effects of the returning organic wastes on soil enzymes and microbial quantity in dryland farming[J].International Agrophysics,2021,35(3):279‑287.
[26]关天霞,马国泰,张昊,等. 不同类型畜禽粪便有机肥对辣椒产量及根际土壤酶活性的影响[J].广东农业科学,2018,45(11):53‑59.
GUAN T X,MA G T,ZHANG H,et al. Effects of different types of livestock manure on pepper yield and enzyme activities in rhizosphere soils[J].Guangdong Agricultural Sciences,2018,45(11):53‑59.
[27]AFANGIDE A I,OKOLI N H,OKON M A,et al.Effects of animal manures on enzymes activities and physico‑chemical properties of a degraded humid ultisol[J]. Agro‑Science,2021,21(1):22‑26.
[28]ANTONIADIS V,MOLLA A,GRAMMENOU A,et al.Insect frass as a novel organic soil fertilizer for the cultivation of spinach(Spinacia oleracea):Effects on soil properties,plant physiological parameters,and nutrient status[J].Journal of Soil Science and Plant Nutrition,2023,23(4):5935‑5944.
[29]APONTE H,MELI P,BUTLER B,et al. Meta‑analysis of heavy metal effects on soil enzyme activities[J].Science of the Total Environment,2020,737:139744.
[30]NOWICKA B. Heavy metal‑induced stress in eukaryotic algae‑mechanisms of heavy metal toxicity and tolerance with particular emphasis on oxidative stress in exposed cells and the role of antioxidant response[J].Environmental Science and Pollution Research International,2022,29(12):16860‑16911.
[31]姚澜,关之昊,王业迪,等. 蚯蚓肥对温室番茄植株抗氧化能力的影响[J].土壤通报,2021,52(2):361‑368.
YAO L,GUAN Z H,WANG Y D,et al. Effect of antioxidant capacity of greenhouse tomatoes by vermicompost[J]. Chinese Journal of Soil Science,2021,52(2):361‑368.
[32]MUHAMMAD I,SHALMANI A,ALI M,et al.Mechanisms regulating the dynamics of photosynthesis under abiotic stresses[J]. Frontiers in Plant Science,2021,11:615942.
[33]FENG Y,DARMA A I,YANG J J,et al. Protaetia brevitarsis larvae produce frass that can be used as an additive to immobilize Cd and improve fertility in alkaline soils[J]. Journal of Hazardous Materials,2024,472:134379.
|