Strong Metal-Support Interactions of Metal/Meatal Oxide Catalysts

Xuetao Qin, Ziqiao Zhou, Ding Ma

Prog Chem ›› 2023, Vol. 35 ›› Issue (6) : 928-939.

PDF(10047 KB)
Home Journals Progress in Chemistry
Progress in Chemistry

Abbreviation (ISO4): Prog Chem      Editor in chief: Jincai ZHAO

About  /  Aim & scope  /  Editorial board  /  Indexed  /  Contact  / 
PDF(10047 KB)
Prog Chem ›› 2023, Vol. 35 ›› Issue (6) : 928-939. DOI: 10.7536/PC221226
Review

Strong Metal-Support Interactions of Metal/Meatal Oxide Catalysts

Author information +
History +

Abstract

Catalysis plays an important role in the modern chemical industry, and developing catalyst with high efficiency is one of the important targets in catalysis research. Due to the outstanding activity of those catalysts with strong metal-support interactions (SMSI), SMSI has become an important scientific topic in catalysis research. The SMSI phenomenon involves the encapsulation of the metal nanoparticles (NPs) by support, resulting in the improved stabilization of NPs, and the different catalytic performances due to the new interaction between NPs and the support. Currently, a great number of catalysts with SMSI have been designed and partially applied, also there are considerable literatures focusing on SMSI of supported catalysts, especially those using metal oxide for support. However due to the complexity, the nature of SMSI and the catalytic mechanism of SMSI deserve further study, and the argument about the driving force of SMSI formation still exists. This review summarizes the recent progress, effect, and the regulation of SMSI, hopefully providing the understanding of SMSI from the perspective of condensed matter chemistry, and a new strategy of catalyst design.

Contents

1 Introduction

2 Research progress in SMSI

2.1 Research history of SMSI

2.2 New types of SMSI

3 Influence of SMSI on catalytic performance

3.1 Activity and stability enhancement

3.2 Selectivity tuning

4 Modulating of SMSI

4.1 Pre-treatment conditions

4.2 Supports

4.3 Metal nanoparticles

5 Conclusion and outlook

Key words

condensed matter chemistry / catalysis chemistry / catalysts / strong metal-support interactions

Cite this article

Download Citations
Xuetao Qin , Ziqiao Zhou , Ding Ma. Strong Metal-Support Interactions of Metal/Meatal Oxide Catalysts[J]. Progress in Chemistry. 2023, 35(6): 928-939 https://doi.org/10.7536/PC221226

References

[1]
Xu R R, Wang K, Chen G, Yan W F. Natl. Sci. Rev., 2019, 6(2): 191.
[2]
Xu R R. Natl. Sci. Rev., 2018, 5: 1.
[3]
Xu R R, Yu J H, Yan W F. Progress in Chemistry, 2020, 32(8):1017.
( 徐如人, 于吉红, 闫文付. 化学进展, 2020, 32(8):1017.).
[4]
Tauster S J, Fung S C, Garten R L. J. Am. Chem. Soc., 1978, 100(1): 170.
[5]
Bruix A, Rodriguez J A, Ramírez P J, Senanayake S D, Evans J, Park J B, Stacchiola D, Liu P, Hrbek J, Illas F. J. Am. Chem. Soc., 2012, 134(21): 8968.
[6]
Campbell C T. Nat. Chem., 2012, 4(8): 597.
[7]
Qiao B T, Liang J X, Wang A Q, Xu C Q, Li J, Zhang T, Liu J J. Nano Res., 2015, 8(9): 2913.
[8]
Matsubu J C, Zhang S Y, DeRita L, Marinkovic N S, Chen J G, Graham G W, Pan X Q, Christopher P. Nat. Chem., 2017, 9(2): 120.
[9]
Liu X Y, Liu M H, Luo Y C, Mou C Y, Lin S D, Cheng H K, Chen J M, Lee J F, Lin T S. J. Am. Chem. Soc., 2012, 134(24): 10251.
[10]
Friedrich M, Penner S, Heggen M, Armbrüster M. Angew. Chem. Int. Ed., 2013, 52(16): 4389.
[11]
Smith J S, Thrower P A, Vannice M A. J. Catal., 1981, 68: 270.
[12]
Bradford M C J, Albert Vannice M. Appl. Catal. A Gen., 1996, 142(1): 73.
[13]
Tauster S J, Fung S C, Baker R T K, Horsley J A. Science, 1981, 211(4487): 1121.
[14]
Sakellson S, McMillan M, Haller G L. J. Phys. Chem., 1986, 90(9): 1733.
[15]
Zhao E W, Zheng H B, Ludden K, Xin Y, Hagelin-Weaver H E, Bowers C R. ACS Catal., 2016, 6(2): 974.
[16]
Gunasooriya G T K K, Seebauer E G, Saeys M. ACS Catal., 2017, 7(3): 1966.
[17]
Chen P R, Khetan A, Yang F K, Migunov V, Weide P, Stürmer S P, Guo P H, Kähler K, Xia W, Mayer J, Pitsch H, Simon U, Muhler M. ACS Catal., 2017, 7(2): 1197.
[18]
Masoud N, Delannoy L, Schaink H, van der Eerden A, de Rijk J W, Silva T A G, Banerjee D, Meeldijk J D, de Jong K P, Louis C, de Jongh P E. ACS Catal., 2017, 7(9): 5594.
[19]
Baker L R, Kennedy G, Van Spronsen M, Hervier A, Cai X J, Chen S Y, Wang L W, Somorjai G A. J. Am. Chem. Soc., 2012, 134(34): 14208.
[20]
Komanoya T, Kinemura T, Kita Y, Kamata K, Hara M. J. Am. Chem. Soc., 2017, 139(33): 11493.
[21]
Corma A, Serna P, ConcepciÓn P, Calvino J J. J. Am. Chem. Soc., 2008, 130(27): 8748.
[22]
Boronat M, ConcepciÓn P, Corma A, González S, Illas F, Serna P. J. Am. Chem. Soc., 2007, 129(51): 16230.
[23]
Wang Y C, Widmann D, Behm R J. ACS Catal., 2017, 7(4): 2339.
[24]
Wang L, Zhang J, Zhu Y H, Xu S D, Wang C T, Bian C Q, Meng X J, Xiao F S. ACS Catal., 2017, 7(11): 7461.
[25]
Hu P P, Huang Z W, Amghouz Z, Makkee M, Xu F, Kapteijn F, Dikhtiarenko A, Chen Y X, Gu X, Tang X F. Angew. Chem. Int. Ed., 2014, 53(13): 3418.
[26]
Guan H L, Lin J, Qiao B T, Yang X F, Li L, Miao S, Liu J Y, Wang A Q, Wang X D, Zhang T. Angew. Chem. Int. Ed., 2016, 55(8): 2820.
[27]
Tang H L, Liu F, Wei J K, Qiao B T, Zhao K F, Su Y, Jin C Z, Li L, Liu J J, Wang J H, Zhang T. Angew. Chem. Int. Ed., 2016, 55(36): 10606.
[28]
Bonanni S, Aït-Mansour K, Brune H, Harbich W. ACS Catal., 2011, 1(4): 385.
[29]
Lee Y J, He G H, Akey A J, Si R, Flytzani-Stephanopoulos M, Herman I P. J. Am. Chem. Soc., 2011, 133(33): 12952.
[30]
Comotti M, Li W C, Spliethoff B, Schüth F. J. Am. Chem. Soc., 2006, 128(3): 917.
[31]
Lin L L, Zhou W, Gao R, Yao S Y, Zhang X, Xu W Q, Zheng S J, Jiang Z, Yu Q L, Li Y W, Shi C, Wen X D, Ma D. Nature, 2017, 544(7648): 80.
[32]
Plata J J, Graciani J, Evans J, Rodriguez J A, Sanz J F. ACS Catal., 2016, 6(7): 4608.
[33]
Carrasco J, LÓpez-Durán D, Liu Z Y, Duchoñ T, Evans J, Senanayake S D, Crumlin E J, Matolín V, Rodríguez J A, Ganduglia-Pirovano M V. Angew. Chem. Int. Ed., 2015, 54(13): 3917.
[34]
Carrasco J, Barrio L, Liu P, Rodriguez J A, Ganduglia-Pirovano M V. J. Phys. Chem. C, 2013, 117(16): 8241.
[35]
Zhang X, Zhang M T, Deng Y C, Xu M Q, Artiglia L, Wen W, Gao R, Chen B B, Yao S Y, Zhang X C, Peng M, Yan J, Li A W, Jiang Z, Gao X Y, Cao S F, Yang C, Kropf A J, Shi J N, Xie J L, Bi M S, van Bokhoven J A, Li Y W, Wen X D, Flytzani-Stephanopoulos M, Shi C, Zhou W, Ma D. Nature, 2021, 589(7842): 396.
[36]
Yeung C M Y, Yu K M K, Fu Q J, Thompsett D, Petch M I, Tsang S C. J. Am. Chem. Soc., 2005, 127(51): 18010.
[37]
Yao S Y, Zhang X, Zhou W, Gao R, Xu W Q, Ye Y F, Lin L L, Wen X D, Liu P, Chen B B, Crumlin E, Guo J H, Zuo Z J, Li W Z, Xie J L, Lu L, Kiely C J, Gu L, Shi C, Rodriguez J A, Ma D. Science, 2017, 357(6349): 389.
[38]
Yang L F, Shan S Y, Loukrakpam R, Petkov V, Ren Y, Wanjala B N, Engelhard M H, Luo J, Yin J, Chen Y S, Zhong C J. J. Am. Chem. Soc., 2012, 134(36): 15048.
[39]
Ma J W, Habrioux A, Morais C, Lewera A, Vogel W, Verde-GÓmez Y, Ramos-Sanchez G, Balbuena P B, Alonso-Vante N. ACS Catal., 2013, 3(9): 1940.
[40]
Mori K, Taga T, Yamashita H. ACS Catal., 2017, 7(5): 3147.
[41]
Wang L B, Li H L, Zhang W B, Zhao X, Qiu J X, Li A W, Zheng X S, Hu Z P, Si R, Zeng J. Angew. Chem. Int. Ed., 2017, 56(17): 4712.
[42]
Li J J, Guan Q Q, Wu H, Liu W, Lin Y, Sun Z H, Ye X X, Zheng X S, Pan H B, Zhu J F, Chen S, Zhang W H, Wei S Q, Lu J L. J. Am. Chem. Soc., 2019, 141(37): 14515.
[43]
Wang Q, Huang X, Zhao Z L, Wang M Y, Xiang B, Li J, Feng Z X, Xu H, Gu M. J. Am. Chem. Soc., 2020, 142(16): 7425.
[44]
Yan H, Cheng H, Yi H, Lin Y, Yao T, Wang C L, Li J J, Wei S Q, Lu J L. J. Am. Chem. Soc., 2015, 137(33): 10484.
[45]
Zhang J Q, Zhao Y F, Guo X, Chen C, Dong C L, Liu R S, Han C P, Li Y D, Gogotsi Y, Wang G X. Nat. Catal., 2018, 1(12): 985.
[46]
Wang X Y, Liu Y, Peng X B, Lin B Y, Cao Y N, Jiang L L. ACS Appl. Energy Mater., 2018, 1(4): 1408.
[47]
Tang H L, Wei J K, Liu F, Qiao B T, Pan X L, Li L, Liu J Y, Wang J H, Zhang T. J. Am. Chem. Soc., 2016, 138(1): 56.
[48]
Tang H L, Su Y, Guo Y L, Zhang L L, Li T B, Zang K T, Liu F, Li L, Luo J, Qiao B T, Wang J H. Chem. Sci., 2018, 9(32): 6679.
[49]
Du X R, Tang H L, Qiao B T. Catalysts, 2021, 11(8): 896.
[50]
Dong J H, Fu Q, Li H B, Xiao J P, Yang B, Zhang B S, Bai Y X, Song T Y, Zhang R K, Gao L J, Cai J, Zhang H, Liu Z, Bao X H. J. Am. Chem. Soc., 2020, 142(40): 17167.
[51]
Dong J H, Fu Q, Jiang Z, Mei B B, Bao X H. J. Am. Chem. Soc., 2018, 140(42): 13808.
[52]
Zhang J, Wang H, Wang L, Ali S, Wang C T, Wang L X, Meng X J, Li B, Su D S, Xiao F S. J. Am. Chem. Soc., 2019, 141(7): 2975.
[53]
Han B, Guo Y L, Huang Y K, Xi W, Xu J, Luo J, Qi H F, Ren Y J, Liu X Y, Qiao B T, Zhang T. Angew. Chem. Int. Ed., 2020, 59(29): 11824.
[54]
Braunschweig E. J. Catal., 1989, 118(1): 227.
[55]
Monai M, Jenkinson K, Melcherts A E M, Louwen J N, Irmak E A, Van Aert S, Altantzis T, Vogt C, van der Stam W, Duchoñ T, Šmíd B, Groeneveld E, Berben P, Bals S, Weckhuysen B M. Science, 2023, 380(6645): 644.
[56]
Chen A L, Yu X J, Zhou Y, Miao S, Li Y, Kuld S, Sehested J, Liu J Y, Aoki T, Hong S, Camellone M F, Fabris S, Ning J, Jin C C, Yang C W, Nefedov A, Wöll C, Wang Y M, Shen W J. Nat. Catal., 2019, 2(4): 334.
[57]
Xu M, Yao S Y, Rao D M, Niu Y M, Liu N, Peng M, Zhai P, Man Y, Zheng L R, Wang B, Zhang B S, Ma D, Wei M. J. Am. Chem. Soc., 2018, 140(36): 11241.
[58]
Lykhach Y, Kozlov S M, Skála T, Tovt A, Stetsovych V, Tsud N, Dvořák F, Johánek V, Neitzel A, Mysliveček J, Fabris S, Matolín V, Neyman K M, Libuda J. Nat. Mater., 2016, 15(3): 284.
[59]
Lee J, Burt S P, Carrero C A, Alba-Rubio A C, Ro I, O’Neill B J, Kim H J, Jackson D H K, Kuech T F, Hermans I, Dumesic J A, Huber G W. J. Catal., 2015, 330: 19.
[60]
Li S W, Xu Y, Chen Y F, Li W Z, Lin L L, Li M Z, Deng Y C, Wang X P, Ge B H, Yang C, Yao S Y, Xie J L, Li Y W, Liu X, Ma D. Angew. Chem. Int. Ed., 2017, 56(36): 10761.
[61]
Tang H L, Su Y, Zhang B S, Lee A F, Isaacs M A, Wilson K, Li L, Ren Y G, Huang J H, Haruta M, Qiao B T, Liu X, Jin C Z, Su D S, Wang J H, Zhang T. Sci. Adv., 2017, 3(10): e1700231.
[62]
Li J, Lin Y P, Pan X L, Miao D Y, Ding D, Cui Y, Dong J H, Bao X H. ACS Catal., 2019, 9(7): 6342.
[63]
Chandler B D. Nat. Chem., 2017, 9(2): 108.
[64]
Kumar A, Ramani V. ACS Catal., 2014, 4(5): 1516.

Funding

The National Natural Science Foundation of China(22102007)
The National Natural Science Foundation of China(21991150)
The National Natural Science Foundation of China(22172150)
The National Natural Science Foundation of China(21821004)
The National Natural Science Foundation of China(22072090)
PDF(10047 KB)

Accesses

Citation

Detail

Sections
Recommended

/