Electrochemical membrane reactor: Synthesis of quaternary ammonium hydroxide from its halide by in situ ion substitution

被引:32
作者
Kumar, Mahendra [1 ]
Tripathi, Bijay P. [1 ]
Saxena, Arunima [1 ]
Shahi, Vinod K. [1 ]
机构
[1] Cent Salt & Marine Chem Res Inst, CSIR, Electromembrane Proc Div, Bhavnagar 364002, Gujarat, India
关键词
Anion-exchange membrane; Electrochemical membrane reactor; Electrodialysis; Quaternary ammonium hydroxide; Current efficiency; ELECTRO-ELECTRODIALYSIS; EXCHANGE MEMBRANES; LACTIC-ACID; SEPARATION; RECOVERY; TRANSPORT; LACTATE; CR(VI);
D O I
10.1016/j.electacta.2008.09.049
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Electrochemical membrane reactors (EMRs) with two compartments (EMR-2: anion-exchange membrane (AEM) separated catholyte and anolyte) and three compartments (EMR-3: three compartments separated by two AEMs to avoid contact between the product and the electrodes) were developed for the synthesis of tetrabutylammonium hydroxide (TBAOH) from tetrabutylammonium bromide (TBABr) by in situ ion substitution. In house prepared AEM with good physicochemical, electrochemical properties and excellent stabilities was used. Schematic diagrams are presented for the possible synthesis of TBAOH from TBABr by in situ ion substitution in EMR-2 and EMR-3. Synthesis of TBAOH using EMR-2 and EMR-3 was achieved under different experimental conditions and process parameters (rate of synthesis, current efficiency (CE) and energy consumption) were estimated. In EMR-2, relatively slow synthesis of TBAOH with low recovery was explained due to Hofmann elimination of TBAOH in contact with the electrode. While in EMR-3, relatively faster rate of TBAOH synthesis with its high recovery and current efficiency indicated practical application of the developed process for the efficient synthesis of TBAOH without the use of any additives or reagents. (c) 2008 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1630 / 1637
页数:8
相关论文
共 34 条
[1]   Facile synthesis of ionic liquids possessing chiral carboxylates [J].
Allen, Christine R. ;
Richard, Paulina L. ;
Ward, Antony J. ;
van de Water, Leon G. A. ;
Masters, Anthony F. ;
Maschmeyer, Thomas .
TETRAHEDRON LETTERS, 2006, 47 (41) :7367-7370
[2]   Nafion membranes for conversion of sodium phenoxides into undissociated phenols [J].
Bandini, S .
JOURNAL OF MEMBRANE SCIENCE, 2002, 207 (02) :209-225
[3]  
BOSE ME, 2004, ENCY REAGENTS ORGANI
[4]   The use of electro-electrodialysis for the removal of sulphuric acid from decontamination effluents [J].
Cattoir, S ;
Smets, D ;
Rahier, A .
DESALINATION, 1999, 121 (02) :123-130
[5]   Recovery of lactic acid from sodium lactate by ion substitution using ion-exchange membrane [J].
Choi, JH ;
Kim, SH ;
Moon, SH .
SEPARATION AND PURIFICATION TECHNOLOGY, 2002, 28 (01) :69-79
[6]   A facile transesterification route to ferrocenyl esters [J].
Debroy, P ;
Naskar, D ;
Roy, S .
INORGANICA CHIMICA ACTA, 2006, 359 (04) :1215-1221
[7]   Cr(VI) transport through ceramic ion-exchange membranes for treatment of industrial wastewaters [J].
Dzyazko, Yu. S. ;
Mahmoud, A. ;
Lapicque, F. ;
Belyakov, V. N. .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 2007, 37 (02) :209-217
[8]   Effect of template type and template/silica mole ratio on the crystallinity of synthesized nanosized ZSM-5 [J].
Fouad, O. A. ;
Mohamed, R. M. ;
Hassan, M. S. ;
Ibrahim, I. A. .
CATALYSIS TODAY, 2006, 116 (01) :82-87
[9]   Ammonium nitrate wastewater treatment by coupled membrane electrolysis and electrodialysis [J].
Gain, E ;
Laborie, S ;
Viers, P ;
Rakib, M ;
Durand, G ;
Hartmann, D .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 2002, 32 (09) :969-975
[10]   Comparative studies on electrochemical characterization of homogeneous and heterogeneous type of ion-exchange membranes [J].
Gohil, GS ;
Shahi, VK ;
Rangarajan, R .
JOURNAL OF MEMBRANE SCIENCE, 2004, 240 (1-2) :211-219