Alkane bromination revisited:: "Reproportionation" in gas-phase methane bromination leads to higher selectivity for CH3Br at moderate temperatures

被引:37
作者
Lorkovic, Ivan M. [1 ]
Sun, Shouli
Gadewar, Sagar
Breed, Ashley
Macala, Gerald S.
Sardar, Amin
Cross, Sarah E.
Sherman, Jeffrey H.
Stucky, Galen D.
Ford, Peter C.
机构
[1] Univ Calif Santa Barbara, Dept Chem & Biochem, Santa Barbara, CA 93103 USA
[2] Gas React Technol, Santa Barbara, CA 93111 USA
关键词
D O I
10.1021/jp061558h
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 reaction of methane and bromine is a mildly exothermic and exergonic example of free radical alkane activation. We show here that the reaction of methane and bromine (CH4: Br-2 g >= 1) may yield either a kinetically or a thermodynamically determined bromomethane product distribution and proceeds in two main phases between 450 and 550 degrees C under ambient pressure on the laboratory time scale. This is in contrast to the highly exothermic methane fluorination or chlorination reactions, which give kinetic product distributions, and to the endergonic iodination of methane, which yields an equilibrium distribution of iodomethanes. The first phase of reaction between methane and bromine is a relatively rapid consumption of bromine to yield a kinetic methane bromination product distribution characterized by low methane conversion, low methyl bromide selectivity, and higher polybromomethane selectivity. In the second slower phase CHxBr4-x reproportionation leads to significantly higher methane conversion and higher methyl bromide selectivity. For methane bromination at 525 degrees C, CH4 conversion and CH3Br selectivity reach 73.5% and 69.5%, respectively, after ample (60 s) time for reproportionation. The high selectivity and simple configuration make this pathway an attractive candidate for scale-up in halogen-mediated methane partial oxidation processes.
引用
收藏
页码:8695 / 8700
页数:6
相关论文
共 21 条
[1]   Bromination of hydrocarbons. II. Photochemical bromination of ethane and ethyl bromine. Carbon-hydrogen bond strength in ethane [J].
Andersen, HC ;
Artsdaifn, ER .
JOURNAL OF CHEMICAL PHYSICS, 1944, 12 (12) :479-483
[2]   The carbon-hydrogen bond strengths in methane and ethane [J].
Andersen, HG ;
Kistiakowsky, CB ;
Van Artsdalen, ER .
JOURNAL OF CHEMICAL PHYSICS, 1942, 10 (05) :305-305
[3]  
Chase M., 1998, NIST JANAF THEMOCHEM, V4th edn
[4]   Molecular, thermodynamic, and kinetic parameters of lodomethanes and lodomethyl radicals:: ab initio calculations [J].
Dymov, BP ;
Skorobogatov, GA ;
Tschuikow-Roux, EP .
RUSSIAN JOURNAL OF GENERAL CHEMISTRY, 2004, 74 (11) :1686-1696
[5]   BOND DISSOCIATION ENERGIES FROM EQUILIBRIUM STUDIES .4. EQUILIBRIUM BR2+CH4 REVERSIBLE HBR+CH3BR - DETERMINATION OF D(CH3-BR) AND DELTA HF DEGREES (CH3BR, G) [J].
FERGUSON, KC ;
OKAFO, EN ;
WHITTLE, E .
JOURNAL OF THE CHEMICAL SOCIETY-FARADAY TRANSACTIONS I, 1973, 69 (02) :295-301
[6]   FREE-RADICAL AND MOLECULE THERMOCHEMISTRY FROM STUDIES OF GAS-PHASE IODINE-ATOM REACTIONS [J].
GOLDEN, DM ;
BENSON, SW .
CHEMICAL REVIEWS, 1969, 69 (01) :125-&
[7]   Bromination of hydrocarbons. I. Photochemical and thermal bromination of methane and methyl bromine. Carbon-hydrogen bond strength in methane [J].
Kistiakowsky, GB ;
Van Artsdalen, ER .
JOURNAL OF CHEMICAL PHYSICS, 1944, 12 (12) :469-478
[8]   C1 Coupling via bromine activation and tandem catalytic condensation and neutralization over CaO/zeolite composites [J].
Lorkovic, I ;
Noy, M ;
Weiss, M ;
Sherman, J ;
McFarland, E ;
Stucky, GD ;
Ford, PC .
CHEMICAL COMMUNICATIONS, 2004, (05) :566-567
[9]   C1 oxidative coupling via bromine activation and tandem catalytic condensation and neutralization over CaO/zeolite composites -: II.: Product distribution variation and full bromine confinement [J].
Lorkovic, IM ;
Noy, ML ;
Schenck, WA ;
Belon, C ;
Weiss, M ;
Sun, SL ;
Sherman, JH ;
McFarland, EW ;
Stucky, GD ;
Ford, PC .
CATALYSIS TODAY, 2004, 98 (04) :589-594
[10]   A novel integrated process for the functionalization of methane and ethane: bromine as mediator [J].
Lorkovic, IM ;
Yilmaz, A ;
Yilmaz, GA ;
Zhou, XP ;
Laverman, LE ;
Sun, SL ;
Schaefer, DJ ;
Weiss, M ;
Noy, ML ;
Cutler, CI ;
Sherman, JH ;
McFarland, EW ;
Stucky, GD ;
Ford, PC .
CATALYSIS TODAY, 2004, 98 (1-2) :317-322