[1] 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,201l,102(3):3488-3497.
[2] Koizumi N,Sato K,Ishimaru S.Cu2+ and Zn2+ ion adsorption onto a fluorohectorite clay-poly(N-isopropylacrylamide) nanocomposite hydrogel[J].Chemistry Letters,2014,43(6):769-771.
[3] Elbariji S,Petrissans A,Elamine M,et al.Removal of Cu2+ from aqueous solutions by adsorption on chemically modified cellulosic supports[J].Particulate Science and Technology,2009,29(4):320-332.
[4] Hsu T C,Yua C C,Yeha C M.Adsorption of Cu2+ from water using raw and modified coal fly ashes[J].Fuel,2008,87(7):1355-1359.
[5] Yu J,Tong M,Sun X,et al.Enhanced and selective adsorption of Pb2+ and Cu2+ by EDTAD-modified biomass of baker's yeast[J].Bioresource Technology,2008,99(7):2588-2593.
[6] 佟雪娇.生物质炭对水体/红壤中Cu(Ⅱ)的去除和固定作用[D].南京:南京农业大学,2011.
[7] Uchimiya M,Wartelle L H,Klasson K,et a1.Influence of pyrolysis temperature on biocharproperty and function as a heavy metal sorbent in soil[J].Journal of Agricultural and Food Chemistry,2011,59(6):2501-2510.
[8] 谢志刚.橘皮渣水处理剂的制备及其应用研究[D].重庆:重庆大学,2006.
[9] Adam J J,David A,Chen E F,et al.Lemon peel and limoncello liqueur:a proteomic due[J].BBA Proteins Proteom,2013(1834):1484-1491.
[10] 沈王庆,雷阳.H3PO4改性柠檬渣的吸附性能与表征研究[J].江苏农业科学,2016,44(3):376-380.
[11] 沈王庆,雷阳,邵培利.H3BO3改性柠檬渣对Cu2+、Pb2+、Cr6+的吸附性能[J].环境科学研究,2017,30(1):152-158.
[12] 沈王庆,李小雪,黄佳.改性柠檬渣的结构特征及其对Cu2+的吸附性能[J].环境科学研究,2016,29(1):146-154.
[13] 祝春水,魏涛,陈文宾,等.花生壳吸附Cu2+的动力学和热力学研究[J].环境污染与防治,2008,30(8):14-18.
[14] 沈王庆,雷阳.NaOH/KOH改性柠檬渣吸附Pb2+的动力学和热力学研究[J].林产化学与工业,2017,37(3):141-146.
[15] 陈月铃,沈王庆,朱俊.柠檬渣微波改性及吸附Pb2+的性能研究[J].天然产物研究与开发,2017,29:826-830,872.
基金资助
2014年四川省教育厅重点项目(14ZA0247);内江师范学院大学生创新创业训练计划项目(X201526)