EDITORIAL

Plasmas and plasmons: links in nanosilver

Published under licence by IOP Publishing Ltd
, , Citation Anna Demming 2013 Nanotechnology 24 090201 DOI 10.1088/0957-4484/24/9/090201

0957-4484/24/9/090201

Abstract

Silver has long been valued not just for its rarity but also for its broad ranging attractive properties as a conductor, catalyst and antimicrobial agent, among others. In nanoscale structures, silver takes on a number of additional attributes, as properties such as antimicrobial activity show size dependence. In addition plasmonic properties are exhibited, which enhance local electromagnetic fields and can be hugely beneficial in sensing and imaging applications. As a result silver nanoparticles are increasingly in demand. In this issue researchers describe a microplasma-assisted electrochemical synthesis that allows excellent control over the size and spacing of the resulting particles, which are important parameters for optimizing their performance in device applications [1].

Wet chemistry [2] and lithography [3] are common processes for silver nanoparticle synthesis. However, other methods are constantly in development. Biosynthesis approaches have been attracting increasing interest as more environmentally friendly alternatives. Takayuki Kuwabara and colleagues at Xiamen University in China used the sundried biomass of Cinnamomum camphora leaf to reduce silver nitrate [4], demonstrating a cost-efficient alternative to conventional methods which might also be suitable for large-scale production. At Zhejiang Normal University researchers noted that the abasic site (AP site) in the DNA duplex can act as a capping scaffold in the generation of fluorescent silver nanoclusters [5]. In addition the resulting fluorescence of the nanocrystals can be used for detecting DNA single-nucleotide polymorphism.

Researchers in Malaysia have also noted the potential sensing applications of nanoparticles of another noble metal for swine DNA [6]. They observed that single-strand DNA was absorbed on gold nanoparticles and led to a colour shift from pinkish-red to grey-purple. The shift was the result of a reduction in the surface plasmon resonance peak at 530 nm and new features appearing in the 620–800 nm regions of the absorption spectra. A number of research groups have investigated the possibility of exploiting the plasmonic properties of silver and gold nanostructures for optoelectronic devices [7–9]. The advantages can be quite substantial. Researchers in Korea successfully used silver nanoparticles to obtain a 38% increase in performance of blue LEDs by using silver nanoparticles embedded in p-GaN [10]. The researchers attribute the improvement to an increase in the spontaneous emission rate through resonance coupling between the excitons in multiple quantum wells and localized surface plasmons in the silver nanoparticles.

In their work reported in this issue Kostya Ostrikov and his co-authors bridge the link between microplasma-assisted electrochemical process parameters and the plasmonic response. As they point out, 'This is an important experimental step towards bringing together plasma chemistry and plasmonics' [1]. All-gas-phase plasma approaches have already been demonstrated for the synthesis of nanoparticles of other metals. X D Pi and colleagues from the University of Minnesota demonstrated how one simple gas-phase process could produce stable silicon nanocrystal emitters with tailored size and surface functionalization [11]. Previously silicon nanocrystals had been prone to emission instabilities in air. Now Ostrikov and colleagues at the University of Sydney, CSIRO Materials Science and Engineering in Australia and the Key Laboratory for Laser Plasmas in China have studied microplasma-assisted electrochemical synthesis of Ag nanoparticles for plasmonic applications [1]. The synthesis uses moderate temperatures and atmospheric pressures and does not involve any toxic reducing agents. In addition they demonstrate how it allows control over nanoparticle size and interparticle spacing to optimize performance in device applications.

Despite the overlap in plasma physics and the origins of plasmonic phenomena, studies of the relationship between plasma electrochemical synthesis and the plasmonic properties of nanoparticles have been limited until now. Yet Kostya Ostrikov and colleagues place particular emphasis on the potential of research at 'the intersection of reactive plasma chemistry and plasmonics'. While navigating the maze of intertwining disciplines that feed into nanotechnology research can be daunting, as this research highlights, great insights and advances may be gained where the different strands of research connect.

References

[1] Huang X Z, Zhong X X, Lu Y, Li Y S, Rider A E, Furman S A and Ostrikov K 2013 Plasmonic Ag nanoparticles via environment-benign atmospheric microplasma electrochemistry Nanotechnology 24 095604

[2] Sun Y and Xia Y 2002 Shape-controlled synthesis of gold and silver nanoparticles Science 298 2176–9

[3] Hulteen J C, Treichel D A, Smith M T, Duval M L, Jensen T R and Van Duyne R P 1999 Nanosphere lithography: size-tunable silver nanoparticle and surface cluster arrays J. Phys. Chem. B 103 3854–63

[4] Huang J et al 2007 Biosynthesis of silver and gold nanoparticles by novel sundried Cinnamomum camphora leaf Nanotechnology 18 105104

[5] Ma K, Cui Q, Liu G, Wu F, Xu S and Shao Y 2011 DNA abasic site-directed formation of fluorescent silver nanoclusters for selective nucleobase recognition Nanotechnology 22 305502

[6] Ali M E, Hashim U, Mustafa S, Che Man Y B, Yusop M H M, Bari M F, Islam Kh N and Hasan M F 2011 Nanoparticle sensor for label free detection of swine DNA in mixed biological samples Nanotechnology 22 195503

[7] Berini P, Olivieri A and Chen C 2012 Thin Au surface plasmon waveguide Schottky detectors on p-Si Nanotechnology 23 444011

[8] Reilly T H III, Van De Lagemaat J, Tenent R C, Morfa A J and Rowlen K L 2008 Surface-plasmon enhanced transparent electrodes in organic photovoltaics Appl. Phys. Lett. 92 243304

[9] Bialiayeu A, Bottomley A, Prezgot D, Ianoul A and Albert J 2012 Plasmon-enhanced refractometry using silver nanowire coatings on tilted fibre Bragg gratings Nanotechnology 23 444012

[10] Cho C-Y, Kwon M-K, Lee S-J, Han S-H, Kang J-W, Kang S-E, Lee D-Y and Park S-J 2010 Surface plasmon-enhanced light-emitting diodes using silver nanoparticles embedded in p-GaN Nanotechnology 21 205201

[11] Pi X D, Liptak R W, Deneen N J, Wells N P, Carter C B, Campbell S A and Kortshagen U 2008 Air-stable full-visible-spectrum emission from silicon nanocrystals synthesized by an all-gas-phase plasma approach Nanotechnology 19 245603

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10.1088/0957-4484/24/9/090201