196
Y. Min et al.
187. Parnsubsakul A, Oaew S, Surareungchai W (2018) Zwitterionic peptide-capped gold
nanoparticles for colorimetric detection of Ni 2+ . Nanoscale 10:5466–5473
188. Liu D, Chen W, Sun K, Deng K, Zhang W, Wang Z, Jiang X (2011) Resettable, multi-readout
logic gates based on controllably reversible aggregation of gold nanoparticles. Angew Chem
Int Ed 50:4103–4107
189. Luan Z, Salk T, Abelson A, Jean S, Law M (2019) Reversible aggregation of covalently
cross-linked gold nanocrystals by linker oxidation. J Phys Chem C 123:23643–23654
190. Frisch H, Marschner DE, Goldmann AS, Barner-Kowollik C (2018) Wavelength-gated
dynamic covalent chemistry. Angew Chem Int Ed 57:2036–2045
191. Cardenas-Daw C, Kroeger A, Schaertl W, Froimowicz P, Landfester K (2012) Reversible
photocycloadditions, a powerful tool for tailoring (nano)materials. Macromol Chem Phys
213:144–156
192. Göstl R, Hecht S (2014) Controlling covalent connection and disconnection with light. Angew
Chem Int Ed 53:8784–8787
193. He H, Feng M, Chen Q, Zhang X, Zhan H (2016) Light-induced reversible self-assembly of
gold nanoparticles surface-immobilized with coumarin ligands. Angew Chem Int Ed 55:936–
940
194. Chen Y, Wang Z, He Y, Yoon YJ, Jung J, Zhang G, Lin Z (2018) Light-enabled reversible
self-assembly and tunable optical properties of stable hairy nanoparticles. Proc Natl Acad Sci
115:E1391–E1400
195. De Fazio AF, El-Sagheer AH, Kahn JS, Nandhakumar I, Burton MR, Brown T, Muskens
OL, Gang O, Kanaras AG (2019) Light-induced reversible DNA ligation of gold nanoparticle
superlattices. ACS Nano 13:5771–5777
196. Bigall NC, Herrmann A-K, Vogel M, Rose M, Simon P, Carrillo-Cabrera W, Dorfs D, Kaskel
S, Gaponik N, Eychmüller A (2009) Hydrogels and aerogels from noble metal nanoparticles.
Angew Chem Int Ed 48:9731–9734
197. Arachchige IU, Brock SL (2007) Sol-gel methods for the assembly of metal chalcogenide
quantum dots. Acc Chem Res 40:801–809
198. Gao X, Esteves RJA, Nahar L, Nowaczyk J, Arachchige IU (2016) Direct cross-linking
of Au/Ag alloy nanoparticles into monolithic aerogels for application in surface-enhanced
Raman scattering. ACS Appl Mater Interfaces 8:13076–13085
199. Guo S, Sun S (2012) FePt nanoparticles assembled on graphene as enhanced catalyst for
oxygen reduction reaction. J Am Chem Soc 134:2492–2495
200. Sreedhala S, Vinod CP (2015) Surfactant assisted formation of ruthenium nanochains under
mild conditions and their catalytic CO oxidation activity. Chem Commun 51:10178–10181
201. Zhao H, Sen S, Udayabhaskararao T, Sawczyk M, Kucanda K, Manna D, Kundu PK, Lee
J-W, Kral P, Klajn R (2016) Reversible trapping and reaction acceleration within dynamically
self-assembling nanoflasks. Nat Nanotechnol 11:82–88
202. Zhang Q, Wang W-Z, Yu J-J, Qu D-H, Tian H (2017) Dynamic self-assembly encodes A
tri-stable Au-TiO 2 photocatalyst. Adv Mater 29:1604948
203. Bian T, Shang L, Yu H, Perez MT, Wu L-Z, Tung C-H, Nie Z, Tang Z, Zhang T (2014)
Spontaneous organization of inorganic nanoparticles into nanovesicles triggered by UV light.
Adv Mater 26:5613–5618
204. Neouze M-A (2013) Nanoparticle assemblies: main synthesis pathways and brief overview
on some important applications. J Mater Sci 48:7321–7349
205. Bouju X, Duguet É, Gauffre F, Henry CR, Kahn ML, Mélinon P, Ravaine S (2018)
Nonisotropic self-assembly of nanoparticles: from compact packing to functional aggregates.
Adv Mater 30:1706558
206. Bazán-Díaz L, Mendoza-Cruz R, Velázquez-Salazar JJ, Plascencia-Villa G, Ascencio-Aguirre
FM, Ojeda-Galván HJ, Herrera-Becerra R, Guisbiers G, José-Yacamán M (2018) Synthesis
and properties of the self-assembly of gold-copper nanoparticles into nanoribbons. Langmuir
34:9394–9401
207. Chen Z, Li J, Zhang X, Wu Z, Zhang H, Sun H, Yang B (2012) Construction of nanoparticle
superstructures on the basis of host-guest interaction to achieve performance integration and
modulation. Phys Chem Chem Phys 14:6119–6125
Précédent

- 206/460

Suivant