7 Catalysis by Metal Nanoparticles Encapsulated …
245
References
1. Phan NTS, Van Der Sluys M, Jones CW (2006) On the nature of the active species in palladium
catalyzed Mizoroki-Heck and Suzuki-Miyaura couplings—homogeneous or heterogeneous
catalysis. A critical review. Adv Synth Catal 348:609–679
2. Astruc D, Lu F, Aranzaes JR (2005) Nanoparticles as recyclable catalysts: the frontier between
homogeneous and heterogeneous catalysis. Angew Chem Int Ed 44:7852–7872
3. Tao AR, Habas S, Yang P (2008) Shape control of colloidal metal nanocrystals. Small 4:310–
325
4. Viñes F, Gomes JRB, Illas F (2014) Understanding the reactivity of metallic nanoparticles:
beyond the extended surface model for catalysis. Chem Soc Rev 43:4922–4939
5. Okumura M, Fujitani T, Huang J, Ishida T (2015) A career in catalysis: Masatake Haruta. ACS
Catal 5:4699–4707
6. Roldan Cuenya B (2010) Synthesis and catalytic properties of metal nanoparticles: size, shape,
support, composition, and oxidation state effects. Thin Solid Films 518:3127–3150
7. Suchomel P, Kvitek L, Prucek R, Panacek A, Halder A, Vajda S, Zboril R (2018) Simple sizecontrolled synthesis of Au nanoparticles and their size-dependent catalytic activity. Sci Rep
8:4589–4599
8. Taketoshi A, Haruta M (2014) Size- and structure-specificity in catalysis by gold clusters.
Chem Lett 43:380–387
9. Narayanan R, El-Sayed MA (2005) Catalysis with transition metal nanoparticles in colloidal
solution: nanoparticle shape dependence and stability. J Phys Chem B 109:12663–12676
10. Rossi LM, Fiorio JL, Garcia MAS, Ferraz CP (2018) The role and fate of capping ligands in
colloidally prepared metal nanoparticle catalysts. Dalton Trans 47:5889–5915
11. Li G, Zhao S, Zhang Y, Tang Z (2018) Metal-organic frameworks encapsulating active nanoparticles as emerging composites for catalysis: recent progress and perspectives. Adv Mater
30:1800702
12. Dhiman M, Polshettiwar V (2018) Supported single atom and pseudo-single atom of metals as
sustainable heterogeneous nanocatalysts. ChemCatChem 10:881–906
13. Dhakshinamoorthy A, Li Z, Garcia H (2018) Catalysis and photocatalysis by metal organic
frameworks. Chem Soc Rev 47:8134–8172
14. Lia G, Tang Z (2014) Nanoscale 6:3995–4011
15. Munnik P, de Jongh PE, de Jong KP (2015) Recent developments in the synthesis of supported
catalysts. Chem Rev 115:6687–6718
16. Gross E, Dean Toste F, Somorjai GA (2015) Polymer-encapsulated metallic nanoparticles as a
bridge between homogeneous and heterogeneous catalysis. Catal Lett 145:126–138
17. Boutin A, Coudert F-X, Springuel-Huet M-A, Neimark AV, Férey G, Fuchs AH (2010) The
behavior of flexible MIL-53(Al) upon CH 4 and CO 2 adsorption. J Phys Chem C 114:22237–
22244
18. Horcajada P, Surblé S, Serre C, Hong D-Y, Seo Y-K, Chang J-S, Grenèche J-M, Margiolakid
I, Férey G (2007) Synthesis and catalytic properties of MIL-100(Fe), an iron(iii) carboxylate
with large pores. Chem Commun 2007:2820–2822
19. Hu Z, Zhao D (2017) Metal–organic frameworks with Lewis acidity: synthesis, characterization, and catalytic applications. CrystEngComm 19:4066–4081
20. Liu M, Wu J, Hou H (2019) Metal–organic framework (MOF)-based materials as heterogeneous
catalysts for C–H bond activation. Chem Eur J 25:2935–2948
21. Wang C, An B, Lin W (2019) Metal-organic frameworks in solid-gas phase catalysis. ACS
Catal 9:130–146
22. Ming Y, Kumar N, Siegel DJ (2017) Water adsorption and insertion in MOF-5. ACS Omega
2:4921–4928
23. Dhakshinamoorthy A, Alvaro M, Concepcion P, Garcia H (2011) Chemical instability of
Cu 3 (BTC)2 by reaction with thiols. Catal Commun 12:1018–1021
24. Li N, Xu J, Feng R, Hu T-L, Bu X-H (2016) Governing metal-organic frameworks towards
high stability. Chem Commun 52:8501–8513
245
References
1. Phan NTS, Van Der Sluys M, Jones CW (2006) On the nature of the active species in palladium
catalyzed Mizoroki-Heck and Suzuki-Miyaura couplings—homogeneous or heterogeneous
catalysis. A critical review. Adv Synth Catal 348:609–679
2. Astruc D, Lu F, Aranzaes JR (2005) Nanoparticles as recyclable catalysts: the frontier between
homogeneous and heterogeneous catalysis. Angew Chem Int Ed 44:7852–7872
3. Tao AR, Habas S, Yang P (2008) Shape control of colloidal metal nanocrystals. Small 4:310–
325
4. Viñes F, Gomes JRB, Illas F (2014) Understanding the reactivity of metallic nanoparticles:
beyond the extended surface model for catalysis. Chem Soc Rev 43:4922–4939
5. Okumura M, Fujitani T, Huang J, Ishida T (2015) A career in catalysis: Masatake Haruta. ACS
Catal 5:4699–4707
6. Roldan Cuenya B (2010) Synthesis and catalytic properties of metal nanoparticles: size, shape,
support, composition, and oxidation state effects. Thin Solid Films 518:3127–3150
7. Suchomel P, Kvitek L, Prucek R, Panacek A, Halder A, Vajda S, Zboril R (2018) Simple sizecontrolled synthesis of Au nanoparticles and their size-dependent catalytic activity. Sci Rep
8:4589–4599
8. Taketoshi A, Haruta M (2014) Size- and structure-specificity in catalysis by gold clusters.
Chem Lett 43:380–387
9. Narayanan R, El-Sayed MA (2005) Catalysis with transition metal nanoparticles in colloidal
solution: nanoparticle shape dependence and stability. J Phys Chem B 109:12663–12676
10. Rossi LM, Fiorio JL, Garcia MAS, Ferraz CP (2018) The role and fate of capping ligands in
colloidally prepared metal nanoparticle catalysts. Dalton Trans 47:5889–5915
11. Li G, Zhao S, Zhang Y, Tang Z (2018) Metal-organic frameworks encapsulating active nanoparticles as emerging composites for catalysis: recent progress and perspectives. Adv Mater
30:1800702
12. Dhiman M, Polshettiwar V (2018) Supported single atom and pseudo-single atom of metals as
sustainable heterogeneous nanocatalysts. ChemCatChem 10:881–906
13. Dhakshinamoorthy A, Li Z, Garcia H (2018) Catalysis and photocatalysis by metal organic
frameworks. Chem Soc Rev 47:8134–8172
14. Lia G, Tang Z (2014) Nanoscale 6:3995–4011
15. Munnik P, de Jongh PE, de Jong KP (2015) Recent developments in the synthesis of supported
catalysts. Chem Rev 115:6687–6718
16. Gross E, Dean Toste F, Somorjai GA (2015) Polymer-encapsulated metallic nanoparticles as a
bridge between homogeneous and heterogeneous catalysis. Catal Lett 145:126–138
17. Boutin A, Coudert F-X, Springuel-Huet M-A, Neimark AV, Férey G, Fuchs AH (2010) The
behavior of flexible MIL-53(Al) upon CH 4 and CO 2 adsorption. J Phys Chem C 114:22237–
22244
18. Horcajada P, Surblé S, Serre C, Hong D-Y, Seo Y-K, Chang J-S, Grenèche J-M, Margiolakid
I, Férey G (2007) Synthesis and catalytic properties of MIL-100(Fe), an iron(iii) carboxylate
with large pores. Chem Commun 2007:2820–2822
19. Hu Z, Zhao D (2017) Metal–organic frameworks with Lewis acidity: synthesis, characterization, and catalytic applications. CrystEngComm 19:4066–4081
20. Liu M, Wu J, Hou H (2019) Metal–organic framework (MOF)-based materials as heterogeneous
catalysts for C–H bond activation. Chem Eur J 25:2935–2948
21. Wang C, An B, Lin W (2019) Metal-organic frameworks in solid-gas phase catalysis. ACS
Catal 9:130–146
22. Ming Y, Kumar N, Siegel DJ (2017) Water adsorption and insertion in MOF-5. ACS Omega
2:4921–4928
23. Dhakshinamoorthy A, Alvaro M, Concepcion P, Garcia H (2011) Chemical instability of
Cu 3 (BTC)2 by reaction with thiols. Catal Commun 12:1018–1021
24. Li N, Xu J, Feng R, Hu T-L, Bu X-H (2016) Governing metal-organic frameworks towards
high stability. Chem Commun 52:8501–8513
