The electrochemical reduction of hydrogen sulfide on platinum in several room temperature ionic liquids

被引:42
|
作者
O'Mahony, Aoife M. [1 ]
Silvester, Debbie S. [1 ]
Aldous, Leigh [2 ]
Hardacre, Christopher [2 ]
Compton, Richard G. [1 ]
机构
[1] Univ Oxford, Phys & Theoret Chem Lab, Oxford OX1 3QZ, England
[2] Queens Univ Belfast, Sch Chem & Chem Engn QUILL, Belfast BT9 5AG, Antrim, North Ireland
来源
JOURNAL OF PHYSICAL CHEMISTRY C | 2008年 / 112卷 / 20期
关键词
D O I
10.1021/jp800819k
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The electrochemical reduction of I atm hydrogen sulfide gas (H2S) has been studied at a platinum microelectrode (10 mu m diameter) in five room temperature ionic liquids (RTILs): [C(2)mim][NTf2], [C(4)mpyrr][NTf2], [C(4)mim][OTf], [C(4)mim][NO3] and [C(4)mim]][PF6] (where [C(n)mim](+) = 1-alkyl-3-methylimidazolium, [NTf2](-) = bis(trifluoromethylsulfonyl)imide, [C(4)mpyrr](+) = N-butyl-N-methylpyrrolidinium, [OTf](-) = trifluoromethlysulfonate, [NO3](-) = nitrate, and [PF6](-) = hexafluorophosphate). In all five RTILs, a chemically irreversible reduction peak was observed on the reductive sweep, followed by one or two oxidative peaks on the reverse scan. The oxidation peaks were assigned to the oxidation of SH- and adsorbed hydrogen. In addition, a small reductive peak was observed prior to the large wave in [C(2)mim]][NTf2] only, which may be due to the reduction of a sulfur impurity in the gas. Potential-step chronoamperometry was carried out on the reduction peak of H2S, revealing diffusion coefficients of 3.2, 4.6, 2.4, 2.7, and 3.1 x 10(-11) m(2) s(-1) and solubilities of 529, 236, 537, 438, and 230 mM in [C(2)mim][NTf2], [C(4)mpyrr][NTf2], [C(4)mim][OTf], [C(4)mim][NO3], and [C(4)mim]][PF6], respectively. The solubilities of H2S in RTILs are much higher than those reported in conventional molecular solvents, suggesting that RTILs may be very favorable gas sensing media for H2S detection.
引用
收藏
页码:7725 / 7730
页数:6
相关论文
共 50 条
  • [41] Electrochemical dissolution of metallic platinum in ionic liquids
    Deferm, Clio
    Hulsegge, Jaco
    Moeller, Claudia
    Thijs, Ben
    [J]. JOURNAL OF APPLIED ELECTROCHEMISTRY, 2013, 43 (08) : 789 - 796
  • [42] Synthesis of room temperature ionic liquids
    Alquzah, Omar
    Hayden, Tiffany
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2017, 253
  • [43] Positronium in Room Temperature Ionic Liquids
    Hirade, Tetsuya
    [J]. 18TH INTERNATIONAL CONFERENCE ON POSITRON ANNIHILATION (ICPA-18), 2019, 2182
  • [44] Modelling room temperature ionic liquids
    Bhargava, B. L.
    Balasubramanian, Sundaram
    Klein, Michael L.
    [J]. CHEMICAL COMMUNICATIONS, 2008, (29) : 3339 - 3351
  • [45] Benzoylation in room temperature ionic liquids
    Rebeiro, GL
    Khadilkar, BM
    [J]. SYNTHETIC COMMUNICATIONS, 2000, 30 (09) : 1605 - 1608
  • [46] Water and room temperature ionic liquids
    Fayer, Michael D.
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2013, 246
  • [47] Room-temperature ionic liquids
    Sawinski, W
    [J]. INZYNIERIA CHEMICZNA I PROCESOWA, 2004, 25 (01): : 169 - 181
  • [48] Structure of room temperature ionic liquids
    Yethiraj, Arun
    [J]. JOURNAL OF PHYSICS-CONDENSED MATTER, 2016, 28 (41)
  • [49] The fluidity of room temperature ionic liquids
    Marcus, Yizhak
    [J]. FLUID PHASE EQUILIBRIA, 2014, 363 : 66 - 69
  • [50] Exploring Electrochemical Windows of Room-Temperature Ionic Liquids: A Computational Study
    Tian, Yong-Hui
    Goff, George S.
    Runde, Wolfgang H.
    Batista, Enrique R.
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2012, 116 (39): : 11943 - 11952