[1] HAN L, RO K S, SUN K, et al. New evidence for high sorption capacity of hydrochar for hydrophobic organic pollutants[J]. Environmental Science & Technology, 2016, 50(24):13274-13282.
[2] JIE J, KE S, WU F, et al. Single-solute and bi-solute sorption of phenanthrene and dibutyl phthalate by plant-and manure-derived biochars[J]. Science of the Total Environment, 2014, 473-474(3):308-316.
[3] HOSSAIN M K, STREZOV V, CHAN K Y, et al. Influence of pyrolysis temperature on production and nutrient properties of wastewater sludge biochar[J]. Journal of Environmental Management, 2011, 92(1):223-228.
[4] YANG Y, SHENG G. Enhanced pesticide sorption by soils containing particulate matter from crop residue burns[J]. Environmental Science & Technology, 2003, 37(16):3635-3639.
[5] RENNER R. Rethinking biochar[J]. Environmental Science & Technology, 2007, 41(17):5932-5933.
[6] LEHMANN J, GAUNT J, RONDON M. Bio-char sequestration in terrestrial ecosystems-a review[J]. Mitigation and Adaptation Strategies for Global Change, 2006, 11(2):395-419.
[7] CHEN B, ZHOU D, ZHU L. Transitional adsorption and partition of nonpolar and polar aromatic contaminants by biochars of pine needles with different pyrolytic temperatures[J]. Environmental Science & Technology, 2008, 42(14):5137-5143.
[8] 周尊隆, 吴文玲, 李阳, 等. 3种多环芳烃在木炭上的吸附/解吸行为[J]. 农业环境科学学报, 2008, 27(2):813-819. ZHOU Z L, WU W L, LI Y, et al. Sorption and desorption behaviors of three PAHs by charcoals[J]. Journal of Agro-Environment Science, 2008, 27(2):813-819(in Chinese).
[9] 王宁, 侯艳伟, 彭静静,等. 生物炭吸附有机污染物的研究进展[J]. 环境化学, 2012, 31(3):287-295. WANG N, HOU Y, PENG J J, et al. Recharch progess on sorption of organic contaminants to biochar[J]. Environmental Chemistry, 2012, 31(3):287-295(in Chinese).
[10] MOHANTY P, NANDA S, PANT K K, et al. Evaluation of the physiochemical development of biochars obtained from pyrolysis of wheat straw, timothy grass and pinewood:effects of heating rate[J]. Journal of Analytical & Applied Pyrolysis, 2013, 104(1):485-493.
[11] GNIAZDOWSKA A, BOGATEK R. Allelopathic interactions between plants. Multi site action of allelochemicals[J]. Acta Physiologiae Plantarum, 2005, 27(3):395-407.
[12] WU F, WANG X, XUE C. Effect of cinnamic acid on soil microbial characteristics in the cucumber rhizosphere[J]. European Journal of Soil Biology, 2009, 45(4):356-362.
[13] 吕可, 潘开文, 王进闯,等. 花椒叶浸提液对土壤微生物数量和土壤酶活性的影响[J]. 应用生态学报, 2006, 17(9):1649-1654. LV K, PAN K, WANG J, et al. Effects of Zanthoxylum bungeanum leaf extract on soil microbe quantity and enzyme activities[J]. Chinese Journal of Applied Ecology, 2006, 17(9):1649-1654(in Chinese).
[14] LI S, XU C, WANG J, et al. Cinnamic, myristic and fumaric acids in tobacco root exudates induce the infection of plants by Ralstonia solanacearum[J]. Plant & Soil, 2016, 412:381-395.
[15] 陈绍莉, 周宝利, 王茹华, 等. 嫁接对茄子根系分泌物中肉桂酸和香草醛的调节效应[J]. 应用生态学报, 2008, 19(11):2394-2399. CHEN S L, ZHOU B L, WANG R H, et al. Regulation effects of grafting on cinnamic acid and vanillin in eggplant root exudates[J]. Chinese Journal of Applied Ecology, 2008, 19(11):2394-2399(in Chinese).
[16] BAZIRAMAKENGA R, LEROUX G D, SIMARD R R. Effects of benzoic and cinnamic acids on membrane permeability of soybean roots[J]. Journal of Chemical Ecology, 1995, 21(9):1271-1285.
[17] 董艳, 董坤, 杨智仙, 等. 肉桂酸对蚕豆枯萎病发生的影响及间作缓解机制[J]. 土壤学报, 2017, 54(2):503-515. DONG Y, DONG K, YANG Z X, et al. Effect of cinnamic acid on incidence of faba bean fusarium wilt and incidence-mitigating mechanisms of wheat and faba bean intercropping[J]. Acta Pedologica Sinica, 2017, 52(7):503-515(in Chinese).
[18] 李亮亮, 李天来, 臧健, 等. 生物碳对加入外源肉桂酸土壤酶活性、微生物结构及土壤养分的影响[J]. 华北农学报, 2013, 28(3):210-216. LI L L, LI T L, ZANG J,, et al. The effect of biochar on soil enzyme activity, microbial community structure and soil nutrient content in the soil amended with cinnamic acid[J], Acta Agriculturae Boreali-Sinica, 2013. 28(3):210-216(in Chinese).
[19] NI J, PIGNATELLO J J, XING B. Adsorption of aromatic carboxylate ions to black carbon (biochar) is accompanied by proton exchange with water[J]. Environmental Science & Technology, 2011, 45(21):9240-9248.
[20] LATTAO C, CAO X, MAO J, et al. Influence of molecular structure and adsorbent properties on sorption of organic compounds to a temperature series of wood chars[J]. Environmental Science & Technology, 2014, 48(9):4790-4798.
[21] UCHIMIYA M, WARTELLE L H, BODDU V M. Sorption of triazine and organophosphorus pesticides on soil and biochar[J]. J Agricultural and Food Chemistry, 2012, 60(60):2989-2997.
[22] CHUN Y, SHENG G, CHIOU C T, et al. Compositions and sorptive properties of crop residue-derived chars[J]. Environmental Science & Technology, 2004, 38(17):4649-4655.
[23] ZHANG G, ZHANG Q, SUN K, et al. Sorption of simazine to corn straw biochars prepared at different pyrolytic temperatures[J]. Environmental Pollution, 2011, 159(10):2594-2601.
[24] RAJAPAKSHA A U, VITHANAGE M, AHMAD M, et al. Enhanced sulfamethazine removal by steam-activated invasive plant-derived biochar[J]. Journal of Hazardous Materials, 2015, 290:43-50.
[25] PENG X, YE L L, WANG C H, et al. Temperature-and duration-dependent rice straw-derived biochar:Characteristics and its effects on soil properties of an Ultisol in southern China[J]. Soil & Tillage Research, 2011, 112(2):159-166.
[26] KEILUWEIT M, NICO P S, JOHNSON M G, et al. Dynamic molecular structure of plant biomass-derived black carbon (biochar)[J]. Environmental Science & Technology, 2010, 44(4):1247-1253.
[27] QIU Y P, CHENG H Y, XU C, et al. Surface characteristics of crop-residue-derived black carbon and lead(Ⅱ) adsorption[J]. Water Resources Research, 2008, 42(3):567-574.
[28] SCHMIDT M W I, NOACK A G. Black carbon in soils and sediments:Analysis, distribution, implications, and current challenges[J]. Global Biogeochemical Cycles, 2000, 14(3):777-793.
[29] AND J J P, XING B. Mechanisms of slow sorption of organic chemicals to natural particles docx[J]. Environmental Science & Technology, 1996, 30(1):1-11.
[30] 王萌萌,周启星. 生物炭的土壤环境效应及其机制研究[J]. 环境化学, 2013, 32(5):768-780. WANG M, ZHOU Q. Environmental effects and their mechanisms of biochar applied to soils[J]. Environmental Chemistry, 2013, 32(5):768-780(in Chinese).
[31] HUANG W, CHEN B. Interaction mechanisms of organic contaminants with burned straw ash charcoal[J]. Journal of Environmental Sciences, 2010, 22(10):1586-1594.
[32] A'LVAREZ-MERINO M A, FONTECHA-CAMARA M A, LOPEZ-RAMON M V,et al. Temperature dependence of the point of zero charge of oxidized and non-oxidized activated carbons[J]. Carbon, 2008, 46(5):778-787.