化工学报 ›› 2019, Vol. 70 ›› Issue (10): 3967-3975.DOI: 10.11949/0438-1157.20190480
收稿日期:
2019-05-07
修回日期:
2019-08-14
出版日期:
2019-10-05
发布日期:
2019-10-05
通讯作者:
徐晶
作者简介:
徐新潮(1988—),男,博士研究生,基金资助:
Xinchao XU(),Pengfei TIAN,Jing XU(),Yifan HAN
Received:
2019-05-07
Revised:
2019-08-14
Online:
2019-10-05
Published:
2019-10-05
Contact:
Jing XU
摘要:
采用密度泛函理论计算对Ag(111)和Ag(211)表面乙醇催化氧化过程进行了系统性研究。研究发现原子氧物种是常温下乙醇氧化的关键中间体。在表面原子氧物种辅助下,乙醇O—H键和α-C—H键依次断裂,生成乙氧基中间体和乙醛产物(活化能(E a)<38.0 kJ/mol)。乙醛随后与表面原子氧和羟基氧物种作用,导致CCOO(在Ag(111)表面发生CCOO
中图分类号:
徐新潮, 田鹏飞, 徐晶, 韩一帆. Ag表面乙醇选择性催化氧化的密度泛函理论研究[J]. 化工学报, 2019, 70(10): 3967-3975.
Xinchao XU, Pengfei TIAN, Jing XU, Yifan HAN. Density functional study of selective oxidation of ethanol over silver catalysts[J]. CIESC Journal, 2019, 70(10): 3967-3975.
吸附物种 | Ag(111) | Ag(211) | |||
---|---|---|---|---|---|
吸附位 | 结合能/(kJ/mol) | 吸附位 | 结合能/(kJ/mol) | ||
CH3CH2OH | O-top | -14.4 | O-top | -18.3 | |
O2 | O-brg | 1.9 | O-4f | -49.0 | |
O | fcc | -339.4 | O-4f | -379.8 | |
H | fcc | -197.1 | fcc | -219.2 | |
OH | O-fcc | -240.4 | fcc | -271.2 | |
H2O | O-top | -8.7 | O-top | -17.3 | |
CH3CH2O | O-top | -101.9 | O-top | -150.0 | |
CH3CHOH | Cα-top | -41.4 | Cα-top | -76.9 | |
CH2CH2OH | Cβ-top, O-top | -90.4 | Cβ-top, O-top | -140.4 | |
CH3CHO | O-top | -8.7 | O-top | -18.3 | |
CH3CO | Cα-top | -81.7 | Cα-top | -116.4 | |
CH2CHO | O-top | -106.7 | O-top | -120.2 | |
CH3COO | Cβ-fcc, O-top | -195.2 | Cβ-fcc, O-top | -238.5 | |
CH3COOH | OOH-top | -7.7 | O-top | -23.1 | |
CH2CO | Cα-top | -5.8 | Cα-top | -8.7 | |
CH2COO | Cβ-top, O-brg | -209.6 | Cβ-top, O-top | -242.3 | |
CHCO | Cβ-brg | -180.8 | Cβ-brg | -235.6 | |
CHCOO | Cβ-fcc, O-top | -245.2 | Cβ-brg, O-top | -310.6 | |
CCO | Cβ-fcc | -318.3 | Cβ-4f | -364.4 | |
CCOO | Cβ-fcc, O-brg | -247.1 | Cβ-brg, O-top | -292.3 | |
OCCO | Cα-top, Cβ-top | -225.4 | — | — | |
CO2 | C-top | -1.9 | C-top | -2.9 |
表1 反应物和可能中间物种在Ag表面的最优吸附位和对应的结合能
Table 1 Preferred adsorption configurations and corresponding binding energies of reactants and surface intermediate species on Ag(111) and Ag(211)
吸附物种 | Ag(111) | Ag(211) | |||
---|---|---|---|---|---|
吸附位 | 结合能/(kJ/mol) | 吸附位 | 结合能/(kJ/mol) | ||
CH3CH2OH | O-top | -14.4 | O-top | -18.3 | |
O2 | O-brg | 1.9 | O-4f | -49.0 | |
O | fcc | -339.4 | O-4f | -379.8 | |
H | fcc | -197.1 | fcc | -219.2 | |
OH | O-fcc | -240.4 | fcc | -271.2 | |
H2O | O-top | -8.7 | O-top | -17.3 | |
CH3CH2O | O-top | -101.9 | O-top | -150.0 | |
CH3CHOH | Cα-top | -41.4 | Cα-top | -76.9 | |
CH2CH2OH | Cβ-top, O-top | -90.4 | Cβ-top, O-top | -140.4 | |
CH3CHO | O-top | -8.7 | O-top | -18.3 | |
CH3CO | Cα-top | -81.7 | Cα-top | -116.4 | |
CH2CHO | O-top | -106.7 | O-top | -120.2 | |
CH3COO | Cβ-fcc, O-top | -195.2 | Cβ-fcc, O-top | -238.5 | |
CH3COOH | OOH-top | -7.7 | O-top | -23.1 | |
CH2CO | Cα-top | -5.8 | Cα-top | -8.7 | |
CH2COO | Cβ-top, O-brg | -209.6 | Cβ-top, O-top | -242.3 | |
CHCO | Cβ-brg | -180.8 | Cβ-brg | -235.6 | |
CHCOO | Cβ-fcc, O-top | -245.2 | Cβ-brg, O-top | -310.6 | |
CCO | Cβ-fcc | -318.3 | Cβ-4f | -364.4 | |
CCOO | Cβ-fcc, O-brg | -247.1 | Cβ-brg, O-top | -292.3 | |
OCCO | Cα-top, Cβ-top | -225.4 | — | — | |
CO2 | C-top | -1.9 | C-top | -2.9 |
反应路径 | O—H断裂 | α-C—H断裂 | β-C—H断裂 | |||
---|---|---|---|---|---|---|
E r/ (kJ/mol) | E a/ (kJ/mol) | E r/ (kJ/mol) | E a/ (kJ/mol) | E r/ (kJ/mol) | E a/ (kJ/mol) | |
Ag(111) | ||||||
直接脱氢 | 160.2 | 226.7 | 192.0 | >192.0 | 193.9 | >193.9 |
O辅助脱氢 | -13.5 | 7.7 | -1.9 | 74.3 | 16.4 | 33.8 |
OH辅助脱氢 | 34.7 | 64.6 | 100.3 | >100.3 | 83.0 | >83.0 |
Ag(211) | ||||||
直接脱氢 | 84.9 | >84.9 | 138.0 | >138.0 | 151.5 | >151.5 |
O辅助脱氢 | -32.8 | 2.9 | 2.9 | 51.5 | 3.8 | 86.8 |
OH辅助脱氢 | 22.2 | 31.8 | 46.3 | 166.9 | 54.0 | 98.4 |
表2 Ag(111)和Ag(211)表面不同脱氢路径下乙醇活化的反应热和活化能
Table 2 Reaction energies (E r) and activation barriers (E a) of the first dehydrogenation reaction in different dehydrogenation paths on Ag(111) and Ag(211) surfaces
反应路径 | O—H断裂 | α-C—H断裂 | β-C—H断裂 | |||
---|---|---|---|---|---|---|
E r/ (kJ/mol) | E a/ (kJ/mol) | E r/ (kJ/mol) | E a/ (kJ/mol) | E r/ (kJ/mol) | E a/ (kJ/mol) | |
Ag(111) | ||||||
直接脱氢 | 160.2 | 226.7 | 192.0 | >192.0 | 193.9 | >193.9 |
O辅助脱氢 | -13.5 | 7.7 | -1.9 | 74.3 | 16.4 | 33.8 |
OH辅助脱氢 | 34.7 | 64.6 | 100.3 | >100.3 | 83.0 | >83.0 |
Ag(211) | ||||||
直接脱氢 | 84.9 | >84.9 | 138.0 | >138.0 | 151.5 | >151.5 |
O辅助脱氢 | -32.8 | 2.9 | 2.9 | 51.5 | 3.8 | 86.8 |
OH辅助脱氢 | 22.2 | 31.8 | 46.3 | 166.9 | 54.0 | 98.4 |
编号 | 基元反应 | E a/ (kJ/mol) | E r/ (kJ/mol) |
---|---|---|---|
1 | O2* | 108.1 | -35.7 |
2 | CH3CH2OH*+O* | 7.7 | -13.5 |
CH3CH2OH*+OH* | 64.6 | 34.7 | |
CH3CH2OH*+* | — | 154.3 | |
3 | CH3CH2OH*+O* | 33.8 | 16.4 |
CH3CH2OH*+OH* | — | 83.0 | |
CH3CH2OH*+* | — | 193.9 | |
4 | CH3CH2OH*+O* | 74.3 | -1.9 |
CH3CH2OH*+OH* | — | 100.3 | |
CH3CH2OH*+* | — | 192.0 | |
5 | CH3CH2O*+O* | 38.6 | -212.3 |
CH3CH2O*+OH* | 62.7 | -73.3 | |
CH3CH2O*+* | 46.3 | 2.9 | |
6 | CH3CH2O*+O* | 95.5 | -5.8 |
CH3CH2O*+OH* | — | 62.7 | |
CH3CH2O*+* | — | 139.9 | |
7 | CH3CHO*+O* | 67.5 | -41.5 |
CH3CHO*+* | — | 120.6 | |
CH3CHO*+OH* | 102.3 | 29.9 | |
8 | CH3CHO*+O* | 49.2 | -21.2 |
CH3CHO*+OH* | 31.8 | 11.6 | |
CH3CHO*+* | — | 128.3 | |
9 | CH2CHO*+O* | 29.9 | -33.8 |
CH2CHO*+OH* | 59.8 | -26.1 | |
CH2CHO*+* | — | 63.7 | |
10 | CH2CHO*+O* | 61.8 | 19.3 |
CH2CHO*+OH* | 54.0 | 47.3 | |
CH2CHO*+* | — | 165.0 | |
11 | CH2CO*+O* | 33.8 | -26.1 |
CH2CO*+OH* | 101.3 | -17.4 | |
CH2CO*+O* | 6.8 | -115.8 | |
12 | CHCO*+O* | 21.2 | -30.9 |
CHCO*+OH* | 16.4 | -28.0 | |
CHCO*+O* | 15.4 | -93.6 | |
13 | CCO*+O* | 21.2 | -100.3 |
14 | CH3CO*+* | 173.7 | 106.1 |
CH2CO*+* | — | 228.7 | |
CHCO*+* | — | 225.8 | |
15 | CH2COO*+* | 155.3 | 38.6 |
CHCOO*+* | 137.0 | 9.7 | |
CCOO*+* | 126.4 | -13.5 | |
16 | CCO*+O* | 53.1 | -83.5 |
表3 Ag(111)表面乙醇氧化反应基元步骤反应热和活化能
Table 3 Activation barriers and reaction energies for elementary reaction steps on Ag(111)
编号 | 基元反应 | E a/ (kJ/mol) | E r/ (kJ/mol) |
---|---|---|---|
1 | O2* | 108.1 | -35.7 |
2 | CH3CH2OH*+O* | 7.7 | -13.5 |
CH3CH2OH*+OH* | 64.6 | 34.7 | |
CH3CH2OH*+* | — | 154.3 | |
3 | CH3CH2OH*+O* | 33.8 | 16.4 |
CH3CH2OH*+OH* | — | 83.0 | |
CH3CH2OH*+* | — | 193.9 | |
4 | CH3CH2OH*+O* | 74.3 | -1.9 |
CH3CH2OH*+OH* | — | 100.3 | |
CH3CH2OH*+* | — | 192.0 | |
5 | CH3CH2O*+O* | 38.6 | -212.3 |
CH3CH2O*+OH* | 62.7 | -73.3 | |
CH3CH2O*+* | 46.3 | 2.9 | |
6 | CH3CH2O*+O* | 95.5 | -5.8 |
CH3CH2O*+OH* | — | 62.7 | |
CH3CH2O*+* | — | 139.9 | |
7 | CH3CHO*+O* | 67.5 | -41.5 |
CH3CHO*+* | — | 120.6 | |
CH3CHO*+OH* | 102.3 | 29.9 | |
8 | CH3CHO*+O* | 49.2 | -21.2 |
CH3CHO*+OH* | 31.8 | 11.6 | |
CH3CHO*+* | — | 128.3 | |
9 | CH2CHO*+O* | 29.9 | -33.8 |
CH2CHO*+OH* | 59.8 | -26.1 | |
CH2CHO*+* | — | 63.7 | |
10 | CH2CHO*+O* | 61.8 | 19.3 |
CH2CHO*+OH* | 54.0 | 47.3 | |
CH2CHO*+* | — | 165.0 | |
11 | CH2CO*+O* | 33.8 | -26.1 |
CH2CO*+OH* | 101.3 | -17.4 | |
CH2CO*+O* | 6.8 | -115.8 | |
12 | CHCO*+O* | 21.2 | -30.9 |
CHCO*+OH* | 16.4 | -28.0 | |
CHCO*+O* | 15.4 | -93.6 | |
13 | CCO*+O* | 21.2 | -100.3 |
14 | CH3CO*+* | 173.7 | 106.1 |
CH2CO*+* | — | 228.7 | |
CHCO*+* | — | 225.8 | |
15 | CH2COO*+* | 155.3 | 38.6 |
CHCOO*+* | 137.0 | 9.7 | |
CCOO*+* | 126.4 | -13.5 | |
16 | CCO*+O* | 53.1 | -83.5 |
编号 | 基元反应 | E a/ (kJ/mol) | E r/ (kJ/mol) |
---|---|---|---|
1 | O2* | 60.8 | -65.2 |
2 | CH3CH2OH*+O* | 2.9 | -32.8 |
CH3CH2OH*+OH* | 31.8 | 22.2 | |
CH3CH2OH*+* | — | 84.9 | |
3 | CH3CH2OH*+O* | 86.8 | 3.8 |
CH3CH2OH*+OH* | 98.4 | 54.0 | |
CH3CH2OH*+* | — | 151.5 | |
4 | CH3CH2OH*+O* | 51.1 | 2.9 |
CH3CH2OH*+OH* | 166.9 | 46.3 | |
CH3CH2OH*+* | — | 138.0 | |
5 | CH3CH2O*+O* | 19.3 | -175.6 |
CH3CH2O*+OH* | 42.4 | -64.6 | |
CH3CH2O*+* | 40.5 | -2.9 | |
6 | CH3CH2O*+O* | 98.4 | -24.1 |
CH3CH2O*+OH* | 58.8 | -67.5 | |
CH3CH2O*+* | — | 165.9 | |
7 | CH3CHO*+O* | 56.0 | -43.4 |
CH3CHO*+* | 115.8 | 100.3 | |
CH3CHO*+OH* | 68.5 | 22.2 | |
8 | CH3CHO*+O* | 6.7 | -56.0 |
CH3CHO*+OH* | 7.7 | 7.7 | |
CH3CHO*+* | — | 93.6 | |
9 | CH2CHO*+O* | 42.4 | -76.2 |
CH2CHO*+OH* | 66.6 | -43.4 | |
CH2CHO*+* | 112.9 | 69.5 | |
10 | CH2CHO*+O* | 113.8 | -25.1 |
CH2CHO*+OH* | 81.0 | 30.9 | |
CH2CHO*+* | — | 150.5 | |
11 | CH2CO*+O* | 0 | -97.4 |
CH2CO*+OH* | 15.4 | -17.4 | |
CH2CO*+O* | 0 | -163.0 | |
12 | CHCO*+O* | 36.7 | -50.2 |
CHCO*+OH* | 47.3 | 11.6 | |
CHCO*+O* | 0 | -123.5 | |
13 | CCO*+O* | 110.0 | -16.4 |
14 | CH3CO*+* | 136.0 | 60.8 |
CH2CO*+* | 169.8 | 133.1 | |
CHCO*+* | — | 208.4 | |
15 | CH2COO*+* | 95.5 | 34.3 |
CHCOO*+* | 103.2 | 37.6 | |
CCOO*+* | 85.9 | 17.5 |
表4 Ag(211)表面乙醇氧化反应基元步骤反应热和活化能
Table 4 Activation barriers and reaction energies for elementary reaction steps on Ag(211)
编号 | 基元反应 | E a/ (kJ/mol) | E r/ (kJ/mol) |
---|---|---|---|
1 | O2* | 60.8 | -65.2 |
2 | CH3CH2OH*+O* | 2.9 | -32.8 |
CH3CH2OH*+OH* | 31.8 | 22.2 | |
CH3CH2OH*+* | — | 84.9 | |
3 | CH3CH2OH*+O* | 86.8 | 3.8 |
CH3CH2OH*+OH* | 98.4 | 54.0 | |
CH3CH2OH*+* | — | 151.5 | |
4 | CH3CH2OH*+O* | 51.1 | 2.9 |
CH3CH2OH*+OH* | 166.9 | 46.3 | |
CH3CH2OH*+* | — | 138.0 | |
5 | CH3CH2O*+O* | 19.3 | -175.6 |
CH3CH2O*+OH* | 42.4 | -64.6 | |
CH3CH2O*+* | 40.5 | -2.9 | |
6 | CH3CH2O*+O* | 98.4 | -24.1 |
CH3CH2O*+OH* | 58.8 | -67.5 | |
CH3CH2O*+* | — | 165.9 | |
7 | CH3CHO*+O* | 56.0 | -43.4 |
CH3CHO*+* | 115.8 | 100.3 | |
CH3CHO*+OH* | 68.5 | 22.2 | |
8 | CH3CHO*+O* | 6.7 | -56.0 |
CH3CHO*+OH* | 7.7 | 7.7 | |
CH3CHO*+* | — | 93.6 | |
9 | CH2CHO*+O* | 42.4 | -76.2 |
CH2CHO*+OH* | 66.6 | -43.4 | |
CH2CHO*+* | 112.9 | 69.5 | |
10 | CH2CHO*+O* | 113.8 | -25.1 |
CH2CHO*+OH* | 81.0 | 30.9 | |
CH2CHO*+* | — | 150.5 | |
11 | CH2CO*+O* | 0 | -97.4 |
CH2CO*+OH* | 15.4 | -17.4 | |
CH2CO*+O* | 0 | -163.0 | |
12 | CHCO*+O* | 36.7 | -50.2 |
CHCO*+OH* | 47.3 | 11.6 | |
CHCO*+O* | 0 | -123.5 | |
13 | CCO*+O* | 110.0 | -16.4 |
14 | CH3CO*+* | 136.0 | 60.8 |
CH2CO*+* | 169.8 | 133.1 | |
CHCO*+* | — | 208.4 | |
15 | CH2COO*+* | 95.5 | 34.3 |
CHCOO*+* | 103.2 | 37.6 | |
CCOO*+* | 85.9 | 17.5 |
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