246
A. Dhakshinamoorthy and H. Garcia
25. Kim D-W, Kim H-G, Cho D-H (2016) Catalytic performance of MIL-100 (Fe, Cr) and MIL-101
(Fe, Cr) in the isomerization of endo- to exo-dicyclopentadiene. Catal Commun 73:69–73
26. Dhakshinamoorthy A, Santiago-Portillo A, Asiri AM, Garcia H (2019) Engineering UiO-66
metal organic framework for heterogeneous catalysis. ChemCatChem 11:899–923
27. Bai Y, Dou Y, Xie L-H, Rutledge W, Li J-R, Zhou H-C (2016) Zr-based metal-organic
frameworks: design, synthesis, structure, and applications. Chem Soc Rev 45:2327–2367
28. Cavka JH, Jakobsen S, Olsbye U, Guillou N, Lamberti C, Bordiga S, Lillerud KP (2008) A
new zirconium inorganic building brick forming metal organic frameworks with exceptional
stability. J Am Chem Soc 130:13850–13851
29. Patra S, Sene S, Mousty C, Serre C, Chausse A, Legrand L, Steunou N (2016) Design of laccasemetal organic framework-based bioelectrodes for biocatalytic oxygen reduction reaction. ACS
Appl Mater Interfaces 8:20012–20022
30. Bhattacharjee S, Chen C, Ahn W-S (2014) Chromium terephthalate metal-organic framework
MIL-101: synthesis, functionalization, and applications for adsorption and catalysis. RSC Adv
4:52500–52525
31. Rösler C, Fischer RA (2015) Metal–organic frameworks as hosts for nanoparticles. CrystEngComm 17:199–217
32. Liu H, Liu Y, Li Y, Tang Z, Jiang H (2010) Metal–organic framework supported gold nanoparticles as a highly active heterogeneous catalyst for aerobic oxidation of alcohols. J Phys Chem
C 114:13362–13369
33. Aijaz A, Karkamkar A, Choi YJ, Tsumori N, Rönnebro E, Autrey T, Shioyama H, Xu Q (2012)
Immobilizing highly catalytically active Pt nanoparticles inside the pores of metal-organic
framework: a double solvents approach. J Am Chem Soc 134:13926–13929
34. Ishida T, Nagaoka M, Akita T, Haruta M (2008) Deposition of gold clusters on porous coordination polymers by solid grinding and their catalytic activity in aerobic oxidation of alcohols.
Chem Eur J 14:8456–8460
35. Dhakshinamoorthy A, Asiri AM, Garcia H (2017) Metal organic frameworks as versatile hosts
of Au nanoparticles in heterogeneous catalysis. ACS Catal 7:2896–2919
36. Li X, Kaizen Tjiptoputro A, Ding J, Min Xue J, Zhu Y (2017) Pd-Ce nanoparticles supported
on functional Fe-MIL-101-NH 2 : an efficient catalyst for selective glycerol oxidation. Catal
Today 279:77–83
37. Yuan B, Pan Y, Li Y, Yin B, Jiang H (2010) A highly active heterogeneous palladium catalyst
for the Suzuki-Miyaura and Ullmann coupling reactions of aryl chlorides in aqueous media.
Angew Chem Int Ed 49:4054–4058
38. Shang N, Gao S, Zhou X, Feng C, Wang Z, Wang C (2014) Palladium nanoparticles
encapsulated inside the pores of a metal–organic framework as a highly active catalyst for
carbon–carbon cross-coupling. RSC Adv 4:54487–54493
39. Pascanu V, Yao Q, Bermejo Gomez A, Gustafsson M, Yun Y, Wan W, Samain L, Zou X,
Martin-Matute B (2013) Sustainable catalysis: rational Pd loading on MIL-101Cr-NH 2 for
more efficient and recyclable Suzuki-Miyaura reactions. Chem Eur J 19:17483–17493
40. Huang Y, Zheng Z, Liu T, Lü J, Lin Z, Li H, Cao R (2011) Palladium nanoparticles supported
on amino functionalized metal-organic frameworks as highly active catalysts for the SuzukiMiyaura cross-coupling reaction. Catal Commun 14:27–31
41. Kardanpour R, Tangestaninejad S, Mirkhani V, Moghadam M, Mohammadpoor-Baltork I,
Khosropour AR, Zadehahmadi F (2014) Highly dispersed palladium nanoparticles supported
on amino functionalized metal-organic frameworks as an efficient and reusable catalyst for
Suzuki cross-coupling reaction. J Organomet Chem 761:127–133
42. Zhang L, Su Z, Jiang F, Zhou Y, Xu W, Hong M (2013) Catalytic palladium nanoparticles
supported on nanoscale MOFs: a highly active catalyst for Suzuki-Miyaura cross-coupling
reaction. Tetrahedron 69:9237–9244
43. Gao S, Zhao N, Shu M, Che S (2010) Palladium nanoparticles supported on MOF-5: a highly
active catalyst for a ligand- and copper-free Sonogashira coupling reaction. Appl Catal A Gen
388:196–201
A. Dhakshinamoorthy and H. Garcia
25. Kim D-W, Kim H-G, Cho D-H (2016) Catalytic performance of MIL-100 (Fe, Cr) and MIL-101
(Fe, Cr) in the isomerization of endo- to exo-dicyclopentadiene. Catal Commun 73:69–73
26. Dhakshinamoorthy A, Santiago-Portillo A, Asiri AM, Garcia H (2019) Engineering UiO-66
metal organic framework for heterogeneous catalysis. ChemCatChem 11:899–923
27. Bai Y, Dou Y, Xie L-H, Rutledge W, Li J-R, Zhou H-C (2016) Zr-based metal-organic
frameworks: design, synthesis, structure, and applications. Chem Soc Rev 45:2327–2367
28. Cavka JH, Jakobsen S, Olsbye U, Guillou N, Lamberti C, Bordiga S, Lillerud KP (2008) A
new zirconium inorganic building brick forming metal organic frameworks with exceptional
stability. J Am Chem Soc 130:13850–13851
29. Patra S, Sene S, Mousty C, Serre C, Chausse A, Legrand L, Steunou N (2016) Design of laccasemetal organic framework-based bioelectrodes for biocatalytic oxygen reduction reaction. ACS
Appl Mater Interfaces 8:20012–20022
30. Bhattacharjee S, Chen C, Ahn W-S (2014) Chromium terephthalate metal-organic framework
MIL-101: synthesis, functionalization, and applications for adsorption and catalysis. RSC Adv
4:52500–52525
31. Rösler C, Fischer RA (2015) Metal–organic frameworks as hosts for nanoparticles. CrystEngComm 17:199–217
32. Liu H, Liu Y, Li Y, Tang Z, Jiang H (2010) Metal–organic framework supported gold nanoparticles as a highly active heterogeneous catalyst for aerobic oxidation of alcohols. J Phys Chem
C 114:13362–13369
33. Aijaz A, Karkamkar A, Choi YJ, Tsumori N, Rönnebro E, Autrey T, Shioyama H, Xu Q (2012)
Immobilizing highly catalytically active Pt nanoparticles inside the pores of metal-organic
framework: a double solvents approach. J Am Chem Soc 134:13926–13929
34. Ishida T, Nagaoka M, Akita T, Haruta M (2008) Deposition of gold clusters on porous coordination polymers by solid grinding and their catalytic activity in aerobic oxidation of alcohols.
Chem Eur J 14:8456–8460
35. Dhakshinamoorthy A, Asiri AM, Garcia H (2017) Metal organic frameworks as versatile hosts
of Au nanoparticles in heterogeneous catalysis. ACS Catal 7:2896–2919
36. Li X, Kaizen Tjiptoputro A, Ding J, Min Xue J, Zhu Y (2017) Pd-Ce nanoparticles supported
on functional Fe-MIL-101-NH 2 : an efficient catalyst for selective glycerol oxidation. Catal
Today 279:77–83
37. Yuan B, Pan Y, Li Y, Yin B, Jiang H (2010) A highly active heterogeneous palladium catalyst
for the Suzuki-Miyaura and Ullmann coupling reactions of aryl chlorides in aqueous media.
Angew Chem Int Ed 49:4054–4058
38. Shang N, Gao S, Zhou X, Feng C, Wang Z, Wang C (2014) Palladium nanoparticles
encapsulated inside the pores of a metal–organic framework as a highly active catalyst for
carbon–carbon cross-coupling. RSC Adv 4:54487–54493
39. Pascanu V, Yao Q, Bermejo Gomez A, Gustafsson M, Yun Y, Wan W, Samain L, Zou X,
Martin-Matute B (2013) Sustainable catalysis: rational Pd loading on MIL-101Cr-NH 2 for
more efficient and recyclable Suzuki-Miyaura reactions. Chem Eur J 19:17483–17493
40. Huang Y, Zheng Z, Liu T, Lü J, Lin Z, Li H, Cao R (2011) Palladium nanoparticles supported
on amino functionalized metal-organic frameworks as highly active catalysts for the SuzukiMiyaura cross-coupling reaction. Catal Commun 14:27–31
41. Kardanpour R, Tangestaninejad S, Mirkhani V, Moghadam M, Mohammadpoor-Baltork I,
Khosropour AR, Zadehahmadi F (2014) Highly dispersed palladium nanoparticles supported
on amino functionalized metal-organic frameworks as an efficient and reusable catalyst for
Suzuki cross-coupling reaction. J Organomet Chem 761:127–133
42. Zhang L, Su Z, Jiang F, Zhou Y, Xu W, Hong M (2013) Catalytic palladium nanoparticles
supported on nanoscale MOFs: a highly active catalyst for Suzuki-Miyaura cross-coupling
reaction. Tetrahedron 69:9237–9244
43. Gao S, Zhao N, Shu M, Che S (2010) Palladium nanoparticles supported on MOF-5: a highly
active catalyst for a ligand- and copper-free Sonogashira coupling reaction. Appl Catal A Gen
388:196–201
