[1] JESCHKE P, NAUEN R, SCHINDLER M, et al. Overview of the status and global strategy for neonicotinoids[J]. Journal of Agricultural and Food Chemistry, 2011, 59(7): 2897-2908. doi: 10.1021/jf101303g
[2] MITCHELL E A D, MULHAUSER B, MULOT M, et al. A worldwide survey of neonicotinoids in honey[J]. Science, 2017, 358(6359): 109-111. doi: 10.1126/science.aan3684
[3] HALLMANN C A, FOPPEN R P B, VAN TURNHOUT C A M, et al. Declines in insectivorous birds are associated with high neonicotinoid concentrations[J]. Nature, 2014, 511(7509): 341-343. doi: 10.1038/nature13531
[4] CAVALLARO M C, MAIN A R, LIBER K, et al. Neonicotinoids and other agricultural stressors collectively modify aquatic insect communities[J]. Chemosphere, 2019, 226: 945-955. doi: 10.1016/j.chemosphere.2019.03.176
[5] HAN W C, TIAN Y, SHEN X M. Human exposure to neonicotinoid insecticides and the evaluation of their potential toxicity: An overview[J]. Chemosphere, 2018, 192: 59-65. doi: 10.1016/j.chemosphere.2017.10.149
[6] 刘晓, 田颖, 周晓慧, 等. 零价铝在碱性条件下还原吡虫啉[J]. 化工学报, 2017, 68(4): 384-389.
[7] MULLIGAN R A, TOMCO P L, HOWARD M W, et al. Aerobic versus anaerobic microbial degradation of clothianidin under simulated california rice field conditions[J]. Journal of Agricultural & Food Chemistry, 2016, 64(38): 7059-7067.
[8] MIR N A, KHAN A, MUNEER M, et al. Photocatalytic degradation of a widely used insecticide thiamethoxam in aqueous suspension of TiO2: Adsorption, kinetics, product analysis and toxicity assessment[J]. Science of the Total Environment, 2013, 458-460: 388-398. doi: 10.1016/j.scitotenv.2013.04.041
[9] LI H, DONG X, DA SILVA E B, et al. Mechanisms of metal sorption by biochars: Biochar characteristics and modifications[J]. Chemosphere, 2017, 178: 466-478. doi: 10.1016/j.chemosphere.2017.03.072
[10] 程扬, 沈启斌, 刘子丹, 等. 两种生物炭的制备及其对水溶液中四环素去除的影响因素[J]. 环境科学, 2019, 40(3): 1328-1336.
[11] NIE T, HAO P, ZHAO Z, et al. Effect of oxidation-induced aging on the adsorption and co-adsorption of tetracycline and Cu2+ onto biochar[J]. Science of the Total Environment, 2019, 673: 522-532. doi: 10.1016/j.scitotenv.2019.04.089
[12] YIN Y, GUO X, PENG D. Iron and manganese oxides modified maize straw to remove tylosin from aqueous solutions[J]. Chemosphere, 2018, 205: 156-165. doi: 10.1016/j.chemosphere.2018.04.108
[13] 李蕊宁, 王兆炜, 郭家磊, 等. 酸碱改性生物炭对水中磺胺噻唑的吸附性能研究[J]. 环境科学学报, 2017, 37(11): 4119-4128.
[14] 李政剑, 石宝友, 苏宇, 等. 粉末活性炭粒径对水中菲吸附动力学的影响效应研究[J]. 环境科学学报, 2013, 33(1): 70-75.
[15] PRESTON C M, SCHMIDT M W I. Black (pyrogenic) carbon: A synthesis of current knowledge and uncertainties with special consideration of boreal regions[J]. Biogeosciences, 2006, 3: 397-420. doi: 10.5194/bg-3-397-2006
[16] 邵翼飞, 张鹏, 刘爱菊. 生物炭对噻虫胺在土壤中吸附和降解的影响[J]. 农业环境科学学报, 2019, 38(11): 2520-2527. doi: 10.11654/jaes.2019-0460
[17] 庾琴, 周华, 王静, 等. 啶虫脒在环境中的降解代谢及其安全性的研究进展[J]. 农药, 2007, 46(4): 223-226. doi: 10.3969/j.issn.1006-0413.2007.04.002
[18] 管欢, 黄慧俐, 行艳景, 等. 噻虫胺在甘蔗和土壤中的残留分析及消解动态[J]. 现代农药, 2015, 14(2): 48-51.
[19] 谢国红, 刘国光, 孙德智, 等. 啶虫脒水解动力学研究[J]. 安徽农业科学, 2007, 35(30): 9629-9630. doi: 10.3969/j.issn.0517-6611.2007.30.078
[20] 杨奇亮, 吴平霄. 改性多孔生物炭的制备及其对水中四环素的吸附性能研究[J]. 环境科学学报, 2019, 39(12): 3973-3984.
[21] 张学良, 徐建, 占新华, 等. 微波辅助合成γ-Fe2O3/花生壳磁性生物炭对水体中环丙沙星吸附的研究[J]. 环境科学学报, 2019, 39(11): 3811-3820.
[22] 郑晓青, 韦安磊, 张一璇, 等. 铁锰氧化物/生物炭复合材料对水中硝酸根的吸附特性[J]. 环境科学, 2018, 39(3): 262-274.
[23] MUTTAKIN M, MITRA S, THU K, et al. Theoretical framework to evaluate minimum desorption temperature for IUPAC classified adsorption isotherms[J]. International Journal of Heat and Mass Transfer, 2018, 122: 795-805. doi: 10.1016/j.ijheatmasstransfer.2018.01.107
[24] OUYANG D, CHEN Y, YAN J, et al. Activation mechanism of peroxymonosulfate by biochar for catalytic degradation of 1,4-dioxane: Important role of biochar defect structures[J]. Chemical Engineering Journal, 2019, 370: 614-624. doi: 10.1016/j.cej.2019.03.235
[25] TAN X L, FANG M, CHEN C L, et al. Counterion effects of nickel and sodium dodecylbenzene sulfonate adsorption to multiwalled carbon nanotubes in aqueous solution[J]. Carbon, 2008, 46(13): 1741-1750. doi: 10.1016/j.carbon.2008.07.023
[26] LIU S, XU W H, LIU Y G, et al. Facile synthesis of Cu(II) impregnated biochar with enhanced adsorption activity for the removal of doxycycline hydrochloride from water[J]. Science of the Total Environment, 2017, 592: 546-553. doi: 10.1016/j.scitotenv.2017.03.087
[27] 孙航, 蒋煜峰, 石磊平, 等. 不同热解及来源生物炭对西北黄土吸附敌草隆的影响[J]. 环境科学, 2016, 37(12): 4857-4866.
[28] ZHOU Y Y, LIU X C, XIANG Y J, et al. Modification of biochar derived from sawdust and its application in removal of tetracycline and copper from aqueous solution: Adsorption mechanism and modelling[J]. Bioresource Technology, 2017, 245: 266-273. doi: 10.1016/j.biortech.2017.08.178
[29] 孙绪兵, 吴雪梅, 朱建发, 等. 羧基甲壳素对Pb(Ⅱ)的吸附性能及机理研究[J]. 中国环境科学, 2018, 38(8): 3018-3028. doi: 10.3969/j.issn.1000-6923.2018.08.030
[30] 张连科, 王洋, 王维大, 等. 生物炭负载纳米羟基磷灰石复合材料的制备及对铅离子的吸附特性[J]. 化工进展, 2018, 37(9): 3492-3501.
[31] DAI L C, ZHU W K, HE L, et al. Calcium-rich biochar from crab shell: An unexpected super adsorbent for dye removal[J]. Bioresource Technology, 2018, 267: 510-516. doi: 10.1016/j.biortech.2018.07.090
[32] PENG X, HU F, LAM F L, et al. Adsorption behavior and mechanisms of ciprofloxacin from aqueous solution by ordered mesoporous carbon and bamboo-based carbon[J]. Journal of Colloid Interface Science, 2015, 460: 349-360. doi: 10.1016/j.jcis.2015.08.050
[33] LIU P, LIU W J, JIANG H, et al. Modification of biochar derived from fast pyrolysis of biomass and its application in removal of tetracycline from aqueous solution[J]. Bioresource Technology, 2012, 121: 235-240. doi: 10.1016/j.biortech.2012.06.085
[34] LI H Q, HU J T, MENG Y, et al. An investigation into the rapid removal of tetracycline using multilayered graphene-phase biochar derived from waste chicken feather[J]. Science of the Total Environment, 2017, 603-604: 39-48. doi: 10.1016/j.scitotenv.2017.06.006
[35] PEIRIS C, GUNATILAKE S R, MLSNA T E, et al. Biochar based removal of antibiotic sulfonamides and tetracyclines in aquatic environments: A critical review[J]. Bioresource Technology, 2017, 246: 150-159. doi: 10.1016/j.biortech.2017.07.150