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·186· 精细化工 FINE CHEMICALS 第 39 卷
biochar composite for removal of Cr(Ⅵ) in water: Isotherms, kinetics Cr(Ⅵ)[J]. Journal of Hazardous Materials, 2018, 352(15): 27-35.
and thermodynamics[J]. Materials Chemistry and Physics, 2021, 260: [22] TAHAR L B, OUESLATI M H, ABUALREISH M. Synthesis of
124165. magnetite derivatives nanoparticles and their application for the
[10] BASHIR S, SAQIB Q, HUSSAIN M, et al. Sugarcane bagasse- removal of chromium (Ⅵ) from aqueous solutions[J]. Journal of
derived biochar reduces the cadmium and chromium bioavailability Colloid and Interface Science, 2018, 512: 115-126.
to mash bean and enhances the microbial activity in contaminated [23] CHANDI P, TASRIN S, SENTHILMURUGAN S, et al.
soil[J]. Journal of Soil & Sediments, 2018, 18(3): 874-886. Comparative assessment of raw and acid-activated preparations of
[11] WANG Y, ZHU L, ZHU F Y, et al. Removal of organic solvents/oils novel pongamia pinnata shells for adsorption of hexavalent
using carbon aerogels derived from waste durian shell[J]. Journal of chromium from simulated wastewater[J]. Environmental Science and
the Taiwan Institute of Chemical Engineers, 2017, 78: 351-358. Pollution Research, 2020, 27: 14836-14851.
[12] WAN D J, WU L R, LIU Y D, et al. Enhanced adsorption of aqueous [24] AJMANI A, SHAHNAZ T, SUBBIAH S, et al. Hexavalent
tetracycline hydrochloride on renewable porous clay-carbon chromium adsorption on virgin, biochar, and chemically modified
adsorbent derived from spent bleaching earth via pyrolysis[J]. carbons prepared from Phanera vahlii fruit biomass: Equilibrium,
Langmuir, 2019, 35(11): 3925-2936. kinetics, and thermodynamics approach[J]. Environmental Science
[13] TANG J, MU B, ZONG L, et al. Facile and green fabrication of and Pollution Research, 2019, 26(31): 32137-32150.
magnetically recyclable carboxyl-functionalized attapulgite/carbon [25] YU J D, JIANG C Y, GUAN Q Q, et al. Enhanced removal of Cr(Ⅵ)
nanocomposites derived from spent bleaching earth for wastewater from aqueous solution by supported ZnO nanoparticles on biochar
treatment[J]. Chemical Engineering Journal, 2017, 322: 102-114. derived from waste water hyacinth[J]. Chemosphere, 2018, 195:
[14] ZHANG M M, LIU Y G, LI T T, et al. Chitosan modification of 632-640.
magnetic biochar produced from eichhornia crassipes for enhanced [26] HAN Y T, CAO X, OUYANG X, et al. Adsorption kinetics of
sorption of Cr(Ⅵ) from aqueous solution[J]. RSC Advances, 2015, magnetic biochar derived from peanut hull on removal of Cr (Ⅵ)
5(58): 46955-46964. from aqueous solution: Effects of production conditions and particle
[15] MASINDI V, RAMAKOKOVHU V M M. The performance of size[J]. Chemosphere, 2016, 145: 336-341.
thermally activated and vibratory ball milled South African bentonite [27] ENNIYA I, RGHIOUI L, JOURANI A. Adsorption of hexavalent
clay for the removal of chromium ions from aqueous solution[J]. chromium in aqueous solution on activated carbon prepared from
Materials Today: Proceedings, 2020, 5(19): 1-11. apple peels[J]. Sustainable Chemistry & Pharmacy, 2018, 7: 9-16.
[16] WANG C H, GU L F, LIU X Y, et al.Sorption behavior of Cr(Ⅵ) on [28] LAYSANDRA L, SANTOSA F, AUSTEN V, et al. Rarasaponin-
pineapple-peel-derived biochar and the influence of coexisting bentonite-activated biochar from durian shells composite for removal
pyrene[J]. International Biodeterioration & Biodegradation, 2016, of crystal violet and Cr(Ⅵ) from aqueous solution[J]. Environmental
111: 78 -84. Science and Pollution Research, 2018, DOI: 10.1007/s11356-018-
[17] ZHOU C L(邹成龙). Study on the preparation of magnetic bentonite 3104-x.
material and its adsorption of heavy metal ions and regeneration[D]. [29] PAYRA C, SHAHNAZ T, SUBBIAH S, et al. Comparative
Shenyang: Shenyang University of Technology (沈阳工业大学), assessment of raw and acid-activated preparations of novel pongamia
2019. pinnata shells for adsorption of hexavalent chromium from simulated
[18] JOBBY R, JHA P, YADAY A K, et al. Biosorption and biotrans wastewater[J]. Environmental Science and Pollution Research, 2020,
formation of hexavalent chromium [Cr( Ⅵ )]: A comprehensive 27(13): 14836-14851.
review[J]. Chemosphere, 2018, 207: 255-266. [30] MOHAPATRA S, KUMAR M, KARIM A A, et al. Biochars
[19] ZHANG L, FU F L, TANG F B. Adsorption and redox conversion evaluation for chromium pollution abatement in chromite mine
behaviors of Cr(Ⅵ) on goethite/carbon microspheres and akaganeite/ wastewater and overburden of Sukinda, Odisha, India[J]. Arabian
carbon microspheres composites[J]. Chemical Engineering Journal, Journal of Geosciences, 2020, 13(13): 586-600.
2019, 356: 151-160. [31] ENNIYA I, RGHIOUI L, JOURANI A. Adsorption of hexavalent
[20] MANDU I I, GAO B, YAO Y, et al. A review of biochar as a chromium in aqueous solution on activated carbon prepared from
low-cost adsorbent for aqueous heavy metal removal[J]. Critical apple peels[J]. Sustainable Chemistry & Pharmacy, 2018, 7: 9-16.
Reviews in Environmental Science and Technology, 2016, 46(4): [32] ABATAN O G, ALABA P A, ONI B A, et al. Performance of
406-433. eggshells powder as an adsorbent for adsorption of hexavalent
[21] LIU Q, LIU Q Z, LIU B S, et al. Green synthesis of tannin- chromium and cadmium from wastewater[J]. SN Applied Sciences,
hexamethylen diamine based adsorbents for efficient removal of 2020, 2(12): 1-13.