S-Doped Sb2O3 Nanorods for Electrocatalytic Nitrogen Reduction

被引:6
|
作者
Cao, Shihai [1 ]
Guan, Zhen [2 ]
Feng, Yanchao [2 ]
Wang, Huiya [1 ]
Liu, Rui [3 ]
Ding, Keqiang [1 ]
机构
[1] Nanjing Inst Technol, Coll Environm Engn, Nanjing 211167, Peoples R China
[2] Nanjing Univ Sci & Technol, Sch Environm & Biol Engn, Key Lab Jiangsu Prov Chem Pollut Control & Resour, Nanjing 210094, Peoples R China
[3] Yunnan Univ, Sch Ecol & Environm Sci, Inst Ecol Res & Pollut Control Plateau Lakes, Kunming 650500, Yunnan, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
Sb2O3; nanorods; sulfur doping; nitrogen reduction reaction; electrocatalysis; density functional theory; AMMONIA-SYNTHESIS; NANOSHEETS; FIXATION; SULFUR; TIO2; VACANCIES; LITHIUM; ANODE; N-2; NANOPARTICLES;
D O I
10.1021/acsanm.1c04177
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Sulfur-doped Sb2O3 nanorods (X-Sb2O3) have been synthesized via a self-assembly process with subsequent calcination, using bulk Sb as the precursor and H2SO4 as the sulfur source. The obtained X-doped Sb2O3 nanorods were confirmed as efficient and stable catalysts for electrochemical nitrogen reduction, which exhibited a superior ammonia yield of 6.88 mu g h(-1) cm(-2) with a Faradaic efficiency of 32.5% at -0.18 V versus RHE. Moreover, the doping amount of sulfur in X-Sb2O3 could be controlled by the calcination temperatures in a muffle furnace. Density functional theory calculations revealed that N-2 was readily adsorbed on the O atom of the 300-Sb2O3 surface, and the subsequent reduction reactions further occurred on the O active site by the distal mechanism. Meanwhile, the superior electrocatalyst performance of 300-Sb2O3 was attributed to sulfur doping, which effectively tuned the electronic structures of Sb2O3 to promote the adsorption and activation ability of N-2. This work provides an easy and efficient way to dope non-metals in Sb2O3 for excellent electrocatalytic performance.
引用
收藏
页码:3591 / 3598
页数:8
相关论文
共 50 条
  • [31] Preparation and property of Sb2O3 nanoparticles
    Lin, BJ
    Zhou, JF
    Li, YD
    Wu, ZS
    Zhang, ZJ
    CHINESE JOURNAL OF INORGANIC CHEMISTRY, 2004, 20 (04) : 407 - 411
  • [32] Sb2O3表面改性研究
    石西昌
    秦毅红
    塑料工业, 1999, (06) : 41 - 42
  • [33] Rational construction of S-doped FeOOH onto Fe2O3 nanorods for enhanced water oxidation
    Quang, Nguyen Duc
    Van, Phuoc Cao
    Majumder, Sutripto
    Jeong, Jong-Ryul
    Kim, Dojin
    Kim, Chunjoong
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2022, 616 : 749 - 758
  • [34] Morphology and optical properties of Sb2O3
    A. E. Panasenko
    L. A. Zemnukhova
    N. N. Barinov
    Inorganic Materials, 2010, 46 : 389 - 392
  • [35] PHOTOCONDUCTIVITY IN CRYSTALLINE AND AMORPHOUS SB2O3
    WOLFFING, B
    HURYCH, Z
    PHYSICA STATUS SOLIDI A-APPLIED RESEARCH, 1973, 16 (02): : K161 - K163
  • [36] Morphology and optical properties of Sb2O3
    Panasenko, A. E.
    Zemnukhova, L. A.
    Barinov, N. N.
    INORGANIC MATERIALS, 2010, 46 (04) : 389 - 392
  • [37] SB2O3 PRICES DEFY GRAVITY
    不详
    EUROPEAN CHEMICAL NEWS, 1994, 62 (1629): : 11 - 11
  • [38] Studies on the electrochemical preparation of Sb2O3
    Mohan, Swaminathan
    Pushpavanam, Subramanian
    Vasudevan, Subramanyan
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2007, 46 (24) : 7870 - 7874
  • [39] Stibiconite (Sb3O6OH), senarmontite (Sb2O3) and valentinite (Sb2O3): Dissolution rates at pH 2-11 and isoelectric points
    Biver, M.
    Shotyk, W.
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2013, 109 : 268 - 279
  • [40] TRIBOLOGICAL PERFORMANCE OF MOS2 COMPACTS CONTAINING MOO3, SB2O3 OR MOO3 AND SB2O3
    CENTERS, PW
    WEAR, 1988, 122 (01) : 97 - 102