Acid-Base Catalytic Effects on Reduction of Methanol in Hot Water

被引:4
作者
Inaba, Satoshi [1 ]
机构
[1] Waseda Univ, Sch Int Liberal Studies, Shinjuku Ku, 1-6-1 Nishiwaseda, Tokyo 1698050, Japan
关键词
reaction rate; methanol; methane; acid-base; hot water; MOLECULAR-ORBITAL METHODS; GAUSSIAN-TYPE BASIS; EQUILIBRIUM STRUCTURE; POTENTIAL FUNCTION; CHEMICAL-REACTIONS; C-1; COMPOUNDS; BASIS-SETS; OXIDATION; MECHANISM; KINETICS;
D O I
10.3390/catal9040373
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
We have performed a number of quantum chemical simulations to examine the reduction process of methanol in hot water. Methanol is converted into a methane by capturing a hydrogen molecule and leaving a water molecule behind. The required energy for the reduction is too high to proceed in the gas phase. The energy barrier for the reduction of methanol is reduced by the catalytic effect of water molecules when we consider the reduction in aqueous solution. However, the calculated reduction rate is still much slower than that found experimentally. The ion product of water tends to increase in hot water, even though it eventually decreases at the high temperature of supercritical water. It is valuable to consider the acid-base catalytic effects on the reduction of methanol in hot water. The significant reduction of the energy barrier is accomplished by the acid-base catalytic effects due to hydronium or hydroxyde. Mean collision time between a hydronium and a methanol in hot water is shorter than the reduction time, during which a methanol is converted into a methane. The calculated reduction rate with the acid-base catalytic effects agrees well with that determined by laboratory experiments. The present study reveals a crucial role of the acid-base catalytic effects on reactions in hot water.
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页数:14
相关论文
共 44 条
[1]   Roles of water for chemical reactions in high-temperature water [J].
Akiya, N ;
Savage, PE .
CHEMICAL REVIEWS, 2002, 102 (08) :2725-2750
[2]  
[Anonymous], 2016, NIST COMPUTATIONAL C
[3]   DENSITY-FUNCTIONAL EXCHANGE-ENERGY APPROXIMATION WITH CORRECT ASYMPTOTIC-BEHAVIOR [J].
BECKE, AD .
PHYSICAL REVIEW A, 1988, 38 (06) :3098-3100
[4]  
Berndt ME, 1996, GEOLOGY, V24, P351, DOI 10.1130/0091-7613(1996)024<0351:ROCDSO>2.3.CO
[5]  
2
[6]   DETAILED CHEMICAL-KINETICS MODEL FOR SUPERCRITICAL WATER OXIDATION OF C-1 COMPOUNDS AND H-2 [J].
BROCK, EE ;
SAVAGE, PE .
AICHE JOURNAL, 1995, 41 (08) :1874-1888
[7]   A reduced mechanism for methanol oxidation in supercritical water [J].
Brock, EE ;
Savage, PE ;
Barker, JR .
CHEMICAL ENGINEERING SCIENCE, 1998, 53 (05) :857-867
[8]   Kinetics and mechanism of methanol oxidation in supercritical water [J].
Brock, EE ;
Oshima, Y ;
Savage, PE ;
Barker, JR .
JOURNAL OF PHYSICAL CHEMISTRY, 1996, 100 (39) :15834-15842
[9]   EFFICIENT DIFFUSE FUNCTION-AUGMENTED BASIS SETS FOR ANION CALCULATIONS. III. THE 3-21+G BASIS SET FOR FIRST-ROW ELEMENTS, LI-F [J].
CLARK, T ;
CHANDRASEKHAR, J ;
SPITZNAGEL, GW ;
SCHLEYER, PV .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 1983, 4 (03) :294-301
[10]   Gaussian-4 theory [J].
Curtiss, Larry A. ;
Redfern, Paul C. ;
Raghavachari, Krishnan .
JOURNAL OF CHEMICAL PHYSICS, 2007, 126 (08)