5 Covalent Assemblies of Metal Nanoparticles—Strategies …
193
120. Tognarelli DJ, Miller RB, Pompano RR, Loftus AF, Sheibley DJ, Leopold MC (2005)
Covalently networked monolayer-protected nanoparticle films. Langmuir 21:11119–11127
121. Shon Y-S, Choo H (2002) [60]Fullerene-linked gold nanoparticles: synthesis and layer-bylayer growth on a solid surface. Chem Commun 2560–2561
122. Dinh T, Shon Y-S (2009) Direct assembly of photoresponsive C 60 –gold nanoparticle hybrid
films. ACS Appl Mater Interfaces 1:2699–2702
123. Caswell KK, Wilson JN, Bunz UHF, Murphy CJ (2003) Preferential end-to-end assembly of
gold nanorods by biotin–streptavidin connectors. J Am Chem Soc 125:13914–13915
124. Pieters BJGE, van Eldijk MB, Nolte RJM, Mecinovi´ c J (2016) Natural supramolecular protein
assemblies. Chem Soc Rev 45:24–39
125. Macfarlane RJ, Lee B, Jones MR, Harris N, Schatz GC, Mirkin CA (2011) Nanoparticle
superlattice engineering with DNA. Science 334:204–208
126. Auyeung E, Morris W, Mondloch JE, Hupp JT, Farha OK, Mirkin CA (2015) Controlling
structure and porosity in catalytic nanoparticle superlattices with DNA. J Am Chem Soc
137:1658–1662
127. Kang ES, Kim Y-T, Ko Y-S, Kim NH, Cho G, Huh YH, Kim J-H, Nam J, Thach TT, Youn D,
Kim YD, Yun WS, DeGrado WF, Kim SY, Hammond PT, Lee J, Kwon Y-U, Ha D-H, Kim
YH (2018) Peptide-programmable nanoparticle superstructures with tailored electrocatalytic
activity. ACS Nano 12:6554–6562
128. Sankar SS, Sangeetha K, Karthick K, Anantharaj S, Ede SR, Kundu S (2018) Pt nanoparticle tethered DNA assemblies for enhanced catalysis and SERS applications. New J Chem
42:15784–15792
129. Maeda Y, Akita T, Daté M, Takagi A, Matsumoto T, Fujitani T, Kohyama M (2010) Nanoparticle arrangement by DNA-programmed self-assembly for catalyst applications. J Appl Phys
108:094326
130. Zinchenko A, Miwa Y, Lopatina LI, Sergeyev VG, Murata S (2014) DNA hydrogel as a
template for synthesis of ultrasmall gold nanoparticles for catalytic applications. ACS Appl
Mater Interfaces 6:3226–3232
131. Nithiyanantham U, Ede SR, Anantharaj S, Kundu S (2015) Self-assembled NiWO 4 nanoparticles into chain-like aggregates on DNA scaffold with pronounced catalytic and supercapacitor
activities. Cryst Growth Des 15:673–686
132. Ede SR, Ramadoss A, Nithiyanantham U, Anantharaj S, Kundu S (2015) Bio-molecule
assisted aggregation of ZnWO 4 nanoparticles (NPs) into chain-like assemblies: material for
high performance supercapacitor and as catalyst for benzyl alcohol oxidation. Inorg Chem
54:3851–3863
133. Tan LH, Xing H, Lu Y (2014) DNA as a powerful tool for morphology control, spatial
positioning, and dynamic assembly of nanoparticles. Acc Chem Res 47:1881–1890
134. Li N, Shang Y, Han Z, Wang T, Wang Z-G, Ding B (2019) Fabrication of metal nanostructures
on DNA templates. ACS Appl Mater Interfaces 11:13835–13852
135. Niemeyer CM, Simon U (2005) DNA-based assembly of metal nanoparticles. Eur J Inorg
Chem 2005:3641–3655
136. Bandy TJ, Brewer A, Burns JR, Marth G, Nguyen T, Stulz E (2011) DNA as supramolecular
scaffold for functional molecules: progress in DNA nanotechnology. Chem Soc Rev 40:138–
148
137. Clever GH, Kaul C, Carell T (2007) DNA–Metal Base Pairs. Angew Chem Int Ed 46:6226–
6236
138. Jang N-H (2002) The coordination chemistry of DNA nucleosides on gold nanoparticles as a
probe by SERS. Bull Korean Chem Soc 23(12):1790–1800
139. Patolsky F, Weizmann Y, Lioubashevski O, Willner I (2002) Au-nanoparticle nanowires based
on DNA and polylysine templates. Angew Chem Int Ed 41:2323–2327
140. Carter JD, LaBean TH (2011) Oganization of inorganic nanomaterials via programmable
DNA self-assembly and peptide molecular recognition. ACS Nano 5:2200–2205
141. Hong F, Zhang F, Liu Y, Yan H (2017) DNA origami: scaffolds for creating higher order
structures. Chem Rev 117:12584–12640
193
120. Tognarelli DJ, Miller RB, Pompano RR, Loftus AF, Sheibley DJ, Leopold MC (2005)
Covalently networked monolayer-protected nanoparticle films. Langmuir 21:11119–11127
121. Shon Y-S, Choo H (2002) [60]Fullerene-linked gold nanoparticles: synthesis and layer-bylayer growth on a solid surface. Chem Commun 2560–2561
122. Dinh T, Shon Y-S (2009) Direct assembly of photoresponsive C 60 –gold nanoparticle hybrid
films. ACS Appl Mater Interfaces 1:2699–2702
123. Caswell KK, Wilson JN, Bunz UHF, Murphy CJ (2003) Preferential end-to-end assembly of
gold nanorods by biotin–streptavidin connectors. J Am Chem Soc 125:13914–13915
124. Pieters BJGE, van Eldijk MB, Nolte RJM, Mecinovi´ c J (2016) Natural supramolecular protein
assemblies. Chem Soc Rev 45:24–39
125. Macfarlane RJ, Lee B, Jones MR, Harris N, Schatz GC, Mirkin CA (2011) Nanoparticle
superlattice engineering with DNA. Science 334:204–208
126. Auyeung E, Morris W, Mondloch JE, Hupp JT, Farha OK, Mirkin CA (2015) Controlling
structure and porosity in catalytic nanoparticle superlattices with DNA. J Am Chem Soc
137:1658–1662
127. Kang ES, Kim Y-T, Ko Y-S, Kim NH, Cho G, Huh YH, Kim J-H, Nam J, Thach TT, Youn D,
Kim YD, Yun WS, DeGrado WF, Kim SY, Hammond PT, Lee J, Kwon Y-U, Ha D-H, Kim
YH (2018) Peptide-programmable nanoparticle superstructures with tailored electrocatalytic
activity. ACS Nano 12:6554–6562
128. Sankar SS, Sangeetha K, Karthick K, Anantharaj S, Ede SR, Kundu S (2018) Pt nanoparticle tethered DNA assemblies for enhanced catalysis and SERS applications. New J Chem
42:15784–15792
129. Maeda Y, Akita T, Daté M, Takagi A, Matsumoto T, Fujitani T, Kohyama M (2010) Nanoparticle arrangement by DNA-programmed self-assembly for catalyst applications. J Appl Phys
108:094326
130. Zinchenko A, Miwa Y, Lopatina LI, Sergeyev VG, Murata S (2014) DNA hydrogel as a
template for synthesis of ultrasmall gold nanoparticles for catalytic applications. ACS Appl
Mater Interfaces 6:3226–3232
131. Nithiyanantham U, Ede SR, Anantharaj S, Kundu S (2015) Self-assembled NiWO 4 nanoparticles into chain-like aggregates on DNA scaffold with pronounced catalytic and supercapacitor
activities. Cryst Growth Des 15:673–686
132. Ede SR, Ramadoss A, Nithiyanantham U, Anantharaj S, Kundu S (2015) Bio-molecule
assisted aggregation of ZnWO 4 nanoparticles (NPs) into chain-like assemblies: material for
high performance supercapacitor and as catalyst for benzyl alcohol oxidation. Inorg Chem
54:3851–3863
133. Tan LH, Xing H, Lu Y (2014) DNA as a powerful tool for morphology control, spatial
positioning, and dynamic assembly of nanoparticles. Acc Chem Res 47:1881–1890
134. Li N, Shang Y, Han Z, Wang T, Wang Z-G, Ding B (2019) Fabrication of metal nanostructures
on DNA templates. ACS Appl Mater Interfaces 11:13835–13852
135. Niemeyer CM, Simon U (2005) DNA-based assembly of metal nanoparticles. Eur J Inorg
Chem 2005:3641–3655
136. Bandy TJ, Brewer A, Burns JR, Marth G, Nguyen T, Stulz E (2011) DNA as supramolecular
scaffold for functional molecules: progress in DNA nanotechnology. Chem Soc Rev 40:138–
148
137. Clever GH, Kaul C, Carell T (2007) DNA–Metal Base Pairs. Angew Chem Int Ed 46:6226–
6236
138. Jang N-H (2002) The coordination chemistry of DNA nucleosides on gold nanoparticles as a
probe by SERS. Bull Korean Chem Soc 23(12):1790–1800
139. Patolsky F, Weizmann Y, Lioubashevski O, Willner I (2002) Au-nanoparticle nanowires based
on DNA and polylysine templates. Angew Chem Int Ed 41:2323–2327
140. Carter JD, LaBean TH (2011) Oganization of inorganic nanomaterials via programmable
DNA self-assembly and peptide molecular recognition. ACS Nano 5:2200–2205
141. Hong F, Zhang F, Liu Y, Yan H (2017) DNA origami: scaffolds for creating higher order
structures. Chem Rev 117:12584–12640
