[1] WEN X, DENG X Z. Current soil erosion assessment in the Loess Plateau of China: A mini-review [J]. Journal of Cleaner Production, 2020, 276: 123091. doi: 10.1016/j.jclepro.2020.123091
[2] NYAMASOKA-MAGONZIWA B, VANEK S J, OJIEM J O, et al. A soil tool kit to evaluate soil properties and monitor soil health changes in smallholder farming contexts [J]. Geoderma, 2020, 376: 114539. doi: 10.1016/j.geoderma.2020.114539
[3] GMOCHOWSKA W, PIETRANIK A, TYSZKA R, et al. Sources of pollution and distribution of Pb, Cd and Hg in Wrocław soils: Insight from chemical and Pb isotope composition [J]. Geochemistry, 2019, 79(3): 434-445. doi: 10.1016/j.chemer.2019.07.002
[4] 何发坤, 蒲生彦, 肖胡萱, 等. 遥感技术在土壤退化中的应用研究进展 [J]. 农业资源与环境学报, 2021, 38(1): 10-19. HE F K, PU S Y, XIAO H X, et al. Review of remote sensing application in soil degradation [J]. Journal of Agricultural Resources and Environment, 2021, 38(1): 10-19(in Chinese).
[5] 李小华, 张建民, 黄占斌. 腐植酸在退化土壤改良中的应用研究 [J]. 科学, 2020, 72(2): 31-34,4. LI X H, ZHANG J M, HUANG Z B. Applied research on degenerated soil improvement by humic acid [J]. Science, 2020, 72(2): 31-34,4(in Chinese).
[6] ZHANG J Q, YANG M Y, ZHANG F B, et al. Revealing soil erosion characteristics using deposited sediment sources in a complex small catchment in the wind-water erosion crisscross region of the Chinese Loess Plateau [J]. Geoderma, 2020, 379: 114634. doi: 10.1016/j.geoderma.2020.114634
[7] LI W, GOU W X, LI W Q, et al. Environmental applications of metal stable isotopes: Silver, mercury and zinc [J]. Environmental Pollution, 2019, 252: 1344-1356. doi: 10.1016/j.envpol.2019.06.037
[8] MABIT L, BERNARD C, LEE Z Y A, et al. Promoting the use of isotopic techniques to combat soil erosion: An overview of the key role played by the SWMCN Subprogramme of the Joint FAO/IAEA Division over the last 20 years [J]. Land Degradation & Development, 2018, 29(9): 3077-3091.
[9] WHITNEY N M, WANAMAKER A D, SWITZER M E, et al. Using stable isotopes as tracers of water masses and nutrient cycling processes in the Gulf of Maine [J]. Continental Shelf Research, 2020, 206: 104210. doi: 10.1016/j.csr.2020.104210
[10] ZIMMERMANN J, HALLORAN L J S, HUNKELER D. Tracking chlorinated contaminants in the subsurface using compound-specific chlorine isotope analysis: A review of principles, current challenges and applications [J]. Chemosphere, 2020, 244: 125476. doi: 10.1016/j.chemosphere.2019.125476
[11] MARQUARD J, AALTO R E, BARROWS T T, et al. Topographic variation in soil erosion and accumulation determined with meteoric 10Be [J]. Earth Surface Processes and Landforms, 2019, 44(1): 98-111. doi: 10.1002/esp.4483
[12] ZHANG W C, XING S, HOU X L. Evaluation of soil erosion and ecological rehabilitation in Loess Plateau region in Northwest China using Plutonium isotopes [J]. Soil and Tillage Research, 2019, 191: 162-170. doi: 10.1016/j.still.2019.04.004
[13] HUANG J, KANG S C, YIN R S, et al. Mercury isotopes in frozen soils reveal transboundary atmospheric mercury deposition over the Himalayas and Tibetan Plateau [J]. Environmental Pollution, 2020, 256: 113432. doi: 10.1016/j.envpol.2019.113432
[14] 葛体达, 王东东, 祝贞科, 等. 碳同位素示踪技术及其在陆地生态系统碳循环研究中的应用与展望 [J]. 植物生态学报, 2020, 44(4): 360-372. doi: 10.17521/cjpe.2019.0208 GE T D, WANG D D, ZHU Z K, et al. Tracing technology of carbon isotope and its applications to studies of carbon cycling in terrestrial ecosystem [J]. Chinese Journal of Plant Ecology, 2020, 44(4): 360-372(in Chinese). doi: 10.17521/cjpe.2019.0208
[15] CHEEMA A I, LIU G J, YOUSAF B, et al. A comprehensive review of biogeochemical distribution and fractionation of lead isotopes for source tracing in distinct interactive environmental compartments [J]. Science of the Total Environment, 2020, 719: 135658. doi: 10.1016/j.scitotenv.2019.135658
[16] 崔永琴, 马剑英, 孙伟, 等. 稳定同位素技术在盐渍土研究中的应用 [J]. 干旱区研究, 2011, 28(3): 401-407. CUI Y Q, MA J Y, SUN W, et al. Application of stable isotope techniques in the study on soil salinization [J]. Arid Zone Research, 2011, 28(3): 401-407(in Chinese).
[17] BAO H M, CAMPBELL D A, BOCKHEIM J G, et al. Origins of sulphate in Antarctic dry-valley soils as deduced from anomalous 17O compositions [J]. Nature, 2000, 407(6803): 499-502. doi: 10.1038/35035054
[18] WEI R F, GUO Q J, TIAN L Y, et al. Characteristics of cadmium accumulation and isotope fractionation in higher plants [J]. Ecotoxicology and Environmental Safety, 2019, 174: 1-11. doi: 10.1016/j.ecoenv.2019.02.003
[19] ZHONG Q H, ZHOU Y C, TSANG D C W, et al. Cadmium isotopes as tracers in environmental studies: A review [J]. Science of the Total Environment, 2020, 736: 139585. doi: 10.1016/j.scitotenv.2020.139585
[20] TAN D C, ZHU J M, WANG X L, et al. High-sensitivity determination of Cd isotopes in low-Cd geological samples by double spike MC-ICP-MS [J]. Journal of Analytical Atomic Spectrometry, 2020, 35(4): 713-727. doi: 10.1039/C9JA00397E
[21] VARGA Z, WALLENIUS M, NICHOLL A, et al. Assessment of uranium inhomogeneity and isotope imaging for nuclear forensics [J]. Spectrochimica Acta Part B:Atomic Spectroscopy, 2020, 171: 105920. doi: 10.1016/j.sab.2020.105920
[22] 包志安. 无助熔剂高温熔融前处理技术和共沉淀法测定Mg同位素组成分析方法研究[D]. 西安: 西北大学, 2018. BAO Z A. The development of flux-free fusion sample preparation technology and precise determination of magnesium isotopic compositions by precipitation technology[D]. Xi'an: Northwest University, 2018(in Chinese).
[23] BEYER M, KÜHNHAMMER K, DUBBERT M. In situ measurements of soil and plant water isotopes: A review of approaches, practical considerations and a vision for the future [J]. Hydrology and Earth System Sciences, 2020, 24(9): 4413-4440. doi: 10.5194/hess-24-4413-2020
[24] LI H Q, ZHU H S, QIU L P, et al. Response of soil OC, N and P to land-use change and erosion in the black soil region of the Northeast China [J]. Agriculture, Ecosystems & Environment, 2020, 302: 107081.
[25] GÓMEZ J A, GUZMÁN G, TOLOZA A, et al. Variation of soil organic carbon, stable isotopes, and soil quality indicators across an erosion–deposition Catena in a historical Spanish olive orchard [J]. Soil, 2020, 6(1): 179-194. doi: 10.5194/soil-6-179-2020
[26] 陈劲松. 7Be示踪土壤侵蚀的基础问题研究[D]. 南京: 南京师范大学, 2011. CHEN J S. Research on basic issues of 7Be tracer of soil erosion[D]. Nanjing: Nanjing Normal University, 2011(in Chinese).
[27] XU Y H, PAN S M, WU M M, et al. Association of Plutonium isotopes with natural soil particles of different size and comparison with 137Cs [J]. Science of the Total Environment, 2017, 581/582: 541-549. doi: 10.1016/j.scitotenv.2016.12.162
[28] SANIEWSKI M, WIETRZYK-PEŁKA P, ZALEWSKA T, et al. Impact of distance from the glacier on the content of 137Cs and 90Sr in the lichen Cetrariella delisei [J]. Chemosphere, 2020, 259: 127433. doi: 10.1016/j.chemosphere.2020.127433
[29] 杨俊诚, 李桂花, 姜慧敏, 等. 同位素示踪农业应用的研究热点 [J]. 同位素, 2019, 32(3): 162-170. doi: 10.7538/tws.2019.32.03.0162 YANG J C, LI G H, JIANG H M, et al. Hotspot fields of isotopes tracing in agricultural science [J]. Journal of Isotopes, 2019, 32(3): 162-170(in Chinese). doi: 10.7538/tws.2019.32.03.0162
[30] HU Y F, ZHANG Y Z. Using 137Cs and 210Pbex to investigate the soil erosion and accumulation moduli on the southern margin of the Hunshandake Sandy Land in Inner Mongolia [J]. Journal of Geographical Sciences, 2019, 29(10): 1655-1669. doi: 10.1007/s11442-019-1983-1
[31] YANG Q Q, LI Z Y, LU X N, et al. A review of soil heavy metal pollution from industrial and agricultural regions in China: Pollution and risk assessment [J]. Science of the Total Environment, 2018, 642: 690-700. doi: 10.1016/j.scitotenv.2018.06.068
[32] WANG P C, LI Z G, LIU J L, et al. Apportionment of sources of heavy metals to agricultural soils using isotope fingerprints and multivariate statistical analyses [J]. Environmental Pollution, 2019, 249: 208-216. doi: 10.1016/j.envpol.2019.03.034
[33] CHEN Y, WENG L, MA J, et al. Review on the last ten years of research on source identification of heavy metal pollution in soils [J]. Journal of Agro-Environment Science, 2019, 38(10): 2219-2238.
[34] HUANG Y, ZHANG S P, CHEN Y, et al. Tracing Pb and possible correlated Cd contamination in soils by using lead isotopic compositions [J]. Journal of Hazardous Materials, 2020, 385: 121528. doi: 10.1016/j.jhazmat.2019.121528
[35] HOSONO T, SU C C, OKAMURA K, et al. Historical record of heavy metal pollution deduced by lead isotope ratios in core sediments from the Osaka Bay, Japan [J]. Journal of Geochemical Exploration, 2010, 107(1): 1-8. doi: 10.1016/j.gexplo.2010.05.003
[36] 宣斌, 王济, 段志斌, 等. 铅同位素示踪土壤重金属污染源解析研究进展 [J]. 环境科学与技术, 2017, 40(11): 17-21. XUAN B, WANG J, DUAN Z B, et al. Advances in application of lead isotope to tracing soil heavy metal pollution [J]. Environmental Science & Technology, 2017, 40(11): 17-21(in Chinese).
[37] KELEPERTZIS E, ARGYRAKI A, CHRASTNÝ V, et al. Metal(loid) and isotopic tracing of Pb in soils, road and house dusts from the industrial area of Volos (central Greece) [J]. Science of the Total Environment, 2020, 725: 138300. doi: 10.1016/j.scitotenv.2020.138300
[38] FENG T, WANG C J, LIU Y, et al. A new analytic model to identify lead pollution sources in soil based on lead fingerprint [J]. International Journal of Environmental Research and Public Health, 2019, 16(24): 5059. doi: 10.3390/ijerph16245059
[39] LEE P K, KANG M J, JEONG Y J, et al. Lead isotopes combined with geochemical and mineralogical analyses for source identification of arsenic in agricultural soils surrounding a zinc smelter [J]. Journal of Hazardous Materials, 2020, 382: 121044. doi: 10.1016/j.jhazmat.2019.121044
[40] CLOQUET C, CARIGNAN J, LIBOUREL G, et al. Tracing source pollution in soils using cadmium and lead isotopes [J]. Environmental Science & Technology, 2006, 40(8): 2525-2530.
[41] WEN H J, ZHANG Y X, CLOQUET C, et al. Tracing sources of pollution in soils from the Jinding Pb-Zn mining district in China using cadmium and lead isotopes [J]. Applied Geochemistry, 2015, 52: 147-154. doi: 10.1016/j.apgeochem.2014.11.025
[42] SIVRY Y, RIOTTE J, SONKE J E, et al. Zn isotopes as tracers of anthropogenic pollution from Zn-ore smelters The Riou Mort-Lot River system [J]. Chemical Geology, 2008, 255(3/4): 295-304.
[43] YIN R S, FENG X B, CHEN B W, et al. Identifying the sources and processes of mercury in subtropical estuarine and ocean sediments using Hg isotopic composition [J]. Environmental Science & Technology, 2015, 49(3): 1347-1355.
[44] SCOTT S R, SMITH K E, DAHMAN C, et al. Cd isotope fractionation during tobacco combustion produces isotopic variation outside the range measured in dietary sources [J]. Science of the Total Environment, 2019, 688: 600-608. doi: 10.1016/j.scitotenv.2019.06.269
[45] 张晓文. 湖南某工业区土壤及水稻重金属污染源解析[D]. 北京: 中国农业科学院, 2019. ZHANG X W. Apportionment of heavy metal pollution sources of soil and rice in an industrial area of Hunan Province[D]. Beijing: Chinese Academy of Agricultural Sciences, 2019(in Chinese).
[46] BROCZA F M, BIESTER H, RICHARD J H, et al. Mercury isotope fractionation in the subsurface of a Hg(II) chloride-contaminated industrial legacy site [J]. Environmental Science & Technology, 2019, 53(13): 7296-7305.
[47] SCHUDEL G, KAPLAN R, ADLER MISERENDINO R, et al. Mercury isotopic signatures of tailings from artisanal and small-scale gold mining (ASGM) in southwestern Ecuador [J]. Science of the Total Environment, 2019, 686: 301-310. doi: 10.1016/j.scitotenv.2019.06.004
[48] SUN G Y, FENG X B, YANG C M, et al. Levels, sources, isotope signatures, and health risks of mercury in street dust across China [J]. Journal of Hazardous Materials, 2020, 392: 122276. doi: 10.1016/j.jhazmat.2020.122276
[49] BAPTISTA-SALAZAR C, HINTELMANN H, BIESTER H. Distribution of mercury species and mercury isotope ratios in soils and river suspended matter of a mercury mining area [J]. Environmental Science:Processes & Impacts, 2018, 20(4): 621-631.
[50] 余婷婷, 甘义群, 刘存富, 等. 基于单体多维稳定同位素分析的地下水有机污染研究进展 [J]. 水文地质工程地质, 2011, 38(1): 103-109. doi: 10.3969/j.issn.1000-3665.2011.01.019 YU T T, GAN Y Q, LIU C F, et al. Advances in multidimensional compound-specific stable isotope analysis method for studies of groundwater organic contamination [J]. Hydrogeology & Engineering Geology, 2011, 38(1): 103-109(in Chinese). doi: 10.3969/j.issn.1000-3665.2011.01.019
[51] 刘佳, 黄振友, 卜婧函. 单体稳定同位素分析在有机物降解中的应用研究进展 [J]. 环境化学, 2020, 39(10): 2722-2732. doi: 10.7524/j.issn.0254-6108.2020051104 LIU J, HUANG Z Y, BU J H. Review on compound-specific stable isotope analysis (CSIA) to transformation mechanisms of organic compounds [J]. Environmental Chemistry, 2020, 39(10): 2722-2732(in Chinese). doi: 10.7524/j.issn.0254-6108.2020051104
[52] ROSENFELDER N, BENDIG P, VETTER W. Stable carbon isotope analysis (δ13C values) of polybrominated diphenyl ethers and their UV-transformation products [J]. Environmental Pollution, 2011, 159(10): 2706-2712. doi: 10.1016/j.envpol.2011.05.020
[53] 左海英. 地下水中典型挥发性有机污染物单体碳氢同位素方法研究及应用[D]. 北京: 中国地质大学(北京), 2015. ZUO H Y. Ananlytical method development and application of carbon and hydrogen isotope for typical volatile organic compounds in groundwater[D]. Beijing: China University of Geosciences, 2015(in Chinese).
[54] ABAKER W E, BERNINGER F, SAIZ G, et al. Linkages between soil carbon, soil fertility and nitrogen fixation in Acacia senegal plantations of varying age in Sudan [J]. PeerJ, 2018, 6: e5232. doi: 10.7717/peerj.5232
[55] PAN K W, XU Z H, BLUMFIELD T, et al. In situ mineral 15N dynamics and fate of added 15NH4+ in hoop pine plantation and adjacent native forest in subtropical Australia [J]. Journal of Soils and Sediments, 2008, 8(6): 398-405. doi: 10.1007/s11368-008-0037-x
[56] TEJEDOR J, SAIZ G, RENNENBERG H, et al. Thinning of beech forests stocking on shallow calcareous soil maintains soil C and N stocks in the long Run [J]. Forests, 2017, 8(5): 167. doi: 10.3390/f8050167
[57] KOPITTKE P M, DALAL R C, HOESCHEN C, et al. Soil organic matter is stabilized by organo-mineral associations through two key processes: The role of the carbon to nitrogen ratio [J]. Geoderma, 2020, 357: 113974. doi: 10.1016/j.geoderma.2019.113974
[58] STEVENSON B A, PARFITT R L, SCHIPPER L A, et al. Relationship between soil δ15N, C/N and N losses across land uses in New Zealand [J]. Agriculture, Ecosystems & Environment, 2010, 139(4): 736-741.
[59] MAYENGO G, ARMBRUSTER W, TREYDTE A C. Quantifying nutrient re-distribution from nutrient hotspots using camera traps, indirect observation and stable isotopes in a miombo ecosystem, Tanzania [J]. Global Ecology and Conservation, 2020, 23: e01073. doi: 10.1016/j.gecco.2020.e01073
[60] LI H Z, YAN F, TUO D F, et al. The effect of climatic and edaphic factors on soil organic carbon turnover in hummocks based on δ13C on the Qinghai-Tibet Plateau [J]. Science of the Total Environment, 2020, 741: 140141. doi: 10.1016/j.scitotenv.2020.140141
[61] SHI P, SCHULIN R. Erosion-induced losses of carbon, nitrogen, phosphorus and heavy metals from agricultural soils of contrasting organic matter management [J]. Science of the Total Environment, 2018, 618: 210-218. doi: 10.1016/j.scitotenv.2017.11.060
[62] MCCORKLE E P, BERHE A A, HUNSAKER C T, et al. Tracing the source of soil organic matter eroded from temperate forest catchments using carbon and nitrogen isotopes [J]. Chemical Geology, 2016, 445: 172-184. doi: 10.1016/j.chemgeo.2016.04.025
[63] ARIAS-ORTIZ A, MASQUÉ P, GLASS L, et al. Losses of soil organic carbon with deforestation in mangroves of Madagascar [J]. Ecosystems, 2021, 24(1): 1-19. doi: 10.1007/s10021-020-00500-z
[64] NOVARA A, KEESSTRA S, CERDÀ A, et al. Understanding the role of soil erosion on CO2-C loss using 13C isotopic signatures in abandoned Mediterranean agricultural land [J]. Science of the Total Environment, 2016, 550: 330-336. doi: 10.1016/j.scitotenv.2016.01.095
[65] JONES A R, DALAL R C. Enrichment of natural 15N abundance during soil N losses under 20 years of continuous cereal cropping [J]. Science of the Total Environment, 2017, 574: 282-287. doi: 10.1016/j.scitotenv.2016.08.192
[66] BELLANGER B, HUON S, VELASQUEZ F, et al. Monitoring soil organic carbon erosion with δ13C and δ15N on experimental field plots in the Venezuelan Andes [J]. CATENA, 2004, 58(2): 125-150. doi: 10.1016/j.catena.2004.03.002
[67] 褚群, 范家霖, 冯固. 磷同位素示踪技术在生态与资源环境科学研究中的新进展 [J]. 核农学报, 2012, 26(5): 828-837. CHU Q, FAN J L, FENG G. New advance of the P isotopic tracing in the ecology and resource-environmental sciences: A review [J]. Journal of Nuclear Agricultural Sciences, 2012, 26(5): 828-837(in Chinese).
[68] OEHL F, OBERSON A, SINAJ S, et al. Organic phosphorus mineralization studies using isotopic dilution techniques [J]. Soil Science Society of America Journal, 2001, 65(3): 780-787. doi: 10.2136/sssaj2001.653780x
[69] CASTORINA F, MASI U. Sr isotopic evidence for studying the salinization of soils: An example from the San Vitale Pinewood (Ravenna) [J]. EQA-International Journal of Environmental, 2009, 2(2): 73-77.
[70] LIU Q, LI F D, LI J, et al. Geochemical and isotopic evidence of shallow groundwater salinization in a reclaimed coastal zone: The Yellow River Delta, China [J]. Environmental Earth Sciences, 2016, 75(14): 1107. doi: 10.1007/s12665-016-5918-5
[71] ALVAREZ M D P, DAPEÑA C, BOUZA P J, et al. Groundwater salinization in arid coastal wetlands: A study case from Playa Fracasso, Patagonia, Argentina [J]. Environmental Earth Sciences, 2015, 73(12): 7983-7994. doi: 10.1007/s12665-014-3957-3
[72] MUSTAFA A, MAHMOOD K, ISHAQUE W. Evaluation of salt tolerance and its relationship with carbon isotope discrimination and physiological parameters of barley genotypes [J]. Communications in Soil Science and Plant Analysis, 2019, 50(5): 594-610. doi: 10.1080/00103624.2019.1573250