5 Covalent Assemblies of Metal Nanoparticles—Strategies …
191
78. Klajn R, Bishop KJM, Grzybowski BA (2007) Light-controlled self-assembly of reversible
and irreversible nanoparticle suprastructures. Proc Natl Acad Sci 104:10305–10309
79. Klajn R, Bishop KJM, Fialkowski M, Paszewski M, Campbell CJ, Gray TP, Grzybowski
BA (2007) Plastic and moldable metals by self-assembly of sticky nanoparticle aggregates.
Science 316:261–264
80. Leng F, Gerber IC, Lecante P, Moldovan S, Girleanu M, Axet MR, Serp P (2016) Controlled
and chemoselective hydrogenation of nitrobenzene over Ru@C 60 catalysts. ACS Catal
6:6018–6024
81. Leng F, Gerber IC, Axet MR, Serp P (2018) Selectivity shifts in hydrogenation of
cinnamaldehyde on electron-deficient ruthenium nanoparticles. C R Chim 21:346–353
82. Leng F, Gerber IC, Lecante P, Bacsa W, Miller J, Gallagher JR, Moldovan S, Girleanu M, Axet
MR, Serp P (2016) Synthesis and structure of ruthenium-fullerides. RSC Adv 6:69135–69148
83. Qu Y, Chen T, Wang G (2019) Hydrogenation of nitrobenzene catalyzed by Pd promoted Ni
supported on C 60 derivative. Appl Surf Sci 465:888–894
84. Solovyeva EV, Ubyivovk EV, Denisova AS (2018) Effect of diaminostilbene as a molecular
linker on Ag nanoparticles: SERS study of aggregation and interparticle hot spots in various
environments. Colloids Surf A 538:542–548
85. Kalidindi SB, Oh H, Hirscher M, Esken D, Wiktor C, Turner S, Van Tendeloo G, Fischer
RA (2012) Metal@COFs: covalent organic frameworks as templates for Pd nanoparticles and
hydrogen storage properties of Pd@COF-102 hybrid material. Chem Eur J 18:10848–10856
86. Pachfule P, Panda MK, Kandambeth S, Shivaprasad SM, Díaz DD, Banerjee R (2014) Multifunctional and robust covalent organic framework-nanoparticle hybrids. J Mater Chem A
2:7944–7952
87. Pachfule P, Kandambeth S, Diaz Diaz D, Banerjee R (2014) Highly stable covalent organic
framework-Au nanoparticles hybrids for enhanced activity for nitrophenol reduction. Chem
Commun 50:3169–3172
88. Cui K, Zhong W, Li L, Zhuang Z, Li L, Bi J, Yu Y (2018) Well-defined metal nanoparticles@covalent organic framework yolk-shell nanocages by ZIF-8 template as catalytic
nanoreactors. Small e1804419
89. Lu S, Hu Y, Wan S, McCaffrey R, Jin Y, Gu H, Zhang W (2017) Synthesis of ultrafine
and highly dispersed metal nanoparticles confined in a thioether-containing covalent organic
framework and their catalytic applications. J Am Chem Soc 139:17082–17088
90. Mirkin CA, Letsinger RL, Mucic RC, Storhoff JJ (1996) A DNA-based method for rationally
assembling nanoparticles into macroscopic materials. Nature 382:607
91. Storhoff JJ, Lazarides AA, Mucic RC, Mirkin CA, Letsinger RL, Schatz GC (2000) What
controls the optical properties of DNA-linked gold nanoparticle assemblies? J Am Chem Soc
122:4640–4650
92. Simon U, Flesch R, Wiggers H, Schön G, Schmid G (1998) Chemical tailoring of the charging
energy in metal cluster arrangements by use of bifunctional spacer molecules. J Mater Chem
8:517–518
93. Kimoto A, Iwasaki K, Abe J (2010) Formation of photoresponsive gold nanoparticle networks
via click chemistry. Photochem Photobiol Sci 9:152–156
94. Hermes JP, Sander F, Peterle T, Cioffi C, Ringler P, Pfohl T, Mayor M (2011) Direct control
of the spatial arrangement of gold nanoparticles in organic-inorganic hybrid superstructures.
Small 7:920–929
95. Kosif I, Kratz K, You SS, Bera MK, Kim K, Leahy B, Emrick T, Lee KYC, Lin B (2017)
Robust gold nanoparticle sheets by ligand cross-linking at the air-water interface. ACS Nano
11:1292–1300
96. Nepal D, Drummy LF, Biswas S, Park K, Vaia RA (2013) Large scale solution assembly
of quantum dot-gold nanorod architectures with Plasmon enhanced fluorescence. ACS Nano
7:9064–9074
97. Torimoto T, Tsumura N, Miyake M, Nishizawa M, Sakata T, Mori H, Yoneyama H
(1999) Preparation and photoelectrochemical properties of two-dimensionally organized CdS
nanoparticle thin films. Langmuir 15:1853–1858
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