Amorphous boron phosphide nanosheets: A highly efficient capacitive deionization electrode for uranium separation from seawater with superior selectivity

被引:33
作者
Chen, Lei [1 ,2 ]
Tong, Dong Ge [1 ]
机构
[1] Chengdu Univ Technol, State Key Lab Geohazard Prevent & Geoenvironm Pro, Chengdu 610059, Peoples R China
[2] Chengdu Univ Technol, Coll Mat & Chem & Chem Engn, Collaborat Innovat Ctr Panxi Strateg Mineral Reso, Chengdu 610059, Peoples R China
关键词
Boron phosphide; Capacitive deionization electrode; Nanosheets; U(VI) ions; Amorphous; PHOSPHORIC-ACID; EXTRACTION; ELECTROSORPTION; RECOVERY; REMOVAL; NANOPARTICLES; ADSORPTION; BATTERIES; OXIDE; IONS;
D O I
10.1016/j.seppur.2020.117175
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Boron phosphide nanosheets were synthesized by direct chemical reaction of B2H6 and PCl3 at ambient temperature, facilitated by use of plasma in an ionic liquid. The material possessed excellent specific capacity of 179.3 F g(-1), large specific surface area (221.7 m(2) g(-1)), and an average thickness of 8.422 nm. It can serve as an electrode material for capacitive deionization to extract U(VI) ions from aqueous solution at concentrations ranging from 0.05 to 130 mg L-1, with a maximum adsorption capacity of 2584 mg g(-1). The excellent performance of these boron phosphide nanosheets is mainly due to their special structural features and ability to strongly coordinate with uranium, which facilitates the electrosorption process. This material also demonstrated superior selective adsorption characteristics for U(VI) ions over other competing metal ions (Sr2+, Ba2+, VO3-, Cr3+, Ca2+, Co2+, Cu2+, Mn2+, Mg2+, Ni2+, Fe3+, Na+, and K+) present in natural seawater. Boron phosphide nanosheets offer potential as a novel and potent electrode material to extract uranium from seawater using capacitive deionization technology.
引用
收藏
页数:10
相关论文
共 45 条
[1]   Materials for the Recovery of Uranium from Seawater [J].
Abney, Carter W. ;
Mayes, Richard T. ;
Saito, Tomonori ;
Dai, Sheng .
CHEMICAL REVIEWS, 2017, 117 (23) :13935-14013
[2]  
[Anonymous], 2020, URANIUM PRICE CAMECO
[3]  
[Anonymous], 1979, REF MAN OP PHI PC WI
[4]   Recovery of Uranium from Wet Phosphoric Acid by Solvent Extraction Processes [J].
Beltrami, Denis ;
Cote, Gerard ;
Mokhtari, Hamid ;
Courtaud, Bruno ;
Moyer, Bruce A. ;
Chagnes, Alexandre .
CHEMICAL REVIEWS, 2014, 114 (24) :12002-12023
[5]  
Cha Q.X., 2002, KINETICS ELECTRODE
[6]   Synthesis of graphene-like CuB23 nanosheets with a fast and stable response to H2S at ppb detection levels [J].
Chen, Ming Ming ;
Huang, Chu Lin ;
Chu, Wei ;
Hou, Li Ping ;
Tong, Dong Ge .
JOURNAL OF MATERIALS CHEMISTRY C, 2017, 5 (13) :3216-3221
[7]   Opportunities and challenges for a sustainable energy future [J].
Chu, Steven ;
Majumdar, Arun .
NATURE, 2012, 488 (7411) :294-303
[8]   EXTRACTION OF URANIUM FROM SEA WATER [J].
DAVIES, RV ;
KENNEDY, J ;
HILL, KM ;
MCILROY, RW ;
SPENCE, R .
NATURE, 1964, 203 (495) :1110-&
[9]   Highly enhanced adsorption performance of U(VI) by non-thermal plasma modified magnetic Fe3O4 nanoparticles [J].
Duan, Shengxia ;
Xu, Xuetao ;
Liu, Xia ;
Wang, Yanan ;
Hayat, Tasawar ;
Alsaedi, Ahmed ;
Meng, Yuedong ;
Li, Jiaxing .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2018, 513 :92-103
[10]   Uranium co-precipitation with iron oxide minerals [J].
Duff, MC ;
Coughlin, JU ;
Hunter, DB .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2002, 66 (20) :3533-3547