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Search for "hydrogen peroxide" in Full Text gives 98 result(s) in Beilstein Journal of Nanotechnology.

Blister formation during graphite surface oxidation by Hummers’ method

  • Olga V. Sinitsyna,
  • Georgy B. Meshkov,
  • Anastasija V. Grigorieva,
  • Alexander A. Antonov,
  • Inna G. Grigorieva and
  • Igor V. Yaminsky

Beilstein J. Nanotechnol. 2018, 9, 407–414, doi:10.3762/bjnano.9.40

Graphical Abstract
  • and hydrogen peroxide solution, the surface became gray and matte, which indicated a significant change in the surface roughness. Raman spectroscopy of the HAPG surface before and after the treatment Raman spectra, recorded from the ordered regions on the HAPG surface before and after the treatment
  • the mixture was applied to the basal-plane surface of the HAPG. After 30 minutes, the samples were washed in a stream of milli-Q water (total volume of about 1 mL), in 3% hydrogen peroxide until the discoloration of the surface, and again in water. The samples were dried in air within a day. An
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Published 02 Feb 2018

Photocatalytic and adsorption properties of TiO2-pillared montmorillonite obtained by hydrothermally activated intercalation of titanium polyhydroxo complexes

  • Mikhail F. Butman,
  • Nikolay L. Ovchinnikov,
  • Nikita S. Karasev,
  • Nataliya E. Kochkina,
  • Alexander V. Agafonov and
  • Alexandr V. Vinogradov

Beilstein J. Nanotechnol. 2018, 9, 364–378, doi:10.3762/bjnano.9.36

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  • temperature of 60 °C. The intercalated samples are designated as Ti-MM. The effectiveness of intercalation was monitored photometrically (spectrophotometer UV-VisU-2001, Hitachi, Japan), with photometric technique based on the formation of a complex titanium(IV) compound with hydrogen peroxide, yellow in
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Published 31 Jan 2018

CdSe nanorod/TiO2 nanoparticle heterojunctions with enhanced solar- and visible-light photocatalytic activity

  • Fakher Laatar,
  • Hatem Moussa,
  • Halima Alem,
  • Lavinia Balan,
  • Emilien Girot,
  • Ghouti Medjahdi,
  • Hatem Ezzaouia and
  • Raphaël Schneider

Beilstein J. Nanotechnol. 2017, 8, 2741–2752, doi:10.3762/bjnano.8.273

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  • accumulated in TiO2 can be trapped by dissolved oxygen molecules and generate superoxide O2•− radicals which are strong oxidants able to decompose organic substances. These O2•− radicals may also react with an electron and protons to form hydrogen peroxide which is further decomposed into hydroxyl •OH
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Published 19 Dec 2017

Strategy to discover full-length amyloid-beta peptide ligands using high-efficiency microarray technology

  • Clelia Galati,
  • Natalia Spinella,
  • Lucio Renna,
  • Danilo Milardi,
  • Francesco Attanasio,
  • Michele Francesco Maria Sciacca and
  • Corrado Bongiorno

Beilstein J. Nanotechnol. 2017, 8, 2446–2453, doi:10.3762/bjnano.8.243

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  • our laboratory. Experimental Chemicals Phosphate-buffered saline, hydrogen peroxide (29%), ammonium hydroxide (25%), hydrochloric acid (37%), methanol, dimethyl sulfoxide (DMSO), anhydrous toluene and 3-glycidyloxypropyltrimethoxysilane (GOPs) were acquired from Sigma-Aldrich. Bovine serum albumin
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Published 20 Nov 2017

Increasing the stability of DNA nanostructure templates by atomic layer deposition of Al2O3 and its application in imprinting lithography

  • Hyojeong Kim,
  • Kristin Arbutina,
  • Anqin Xu and
  • Haitao Liu

Beilstein J. Nanotechnol. 2017, 8, 2363–2375, doi:10.3762/bjnano.8.236

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  • , USA). 2-Amino-2-(hydroxymethyl)-1,3-propanediol (Tris), ethylenediaminetetraacetic acid (EDTA), magnesium acetate tetrahydrate, sulfuric acid, hydrogen peroxide solution (30% H2O2), and poly(L-lactide) were purchased from Sigma-Aldrich (St. Louis, MO, USA). Acetic acid (glacial), dichloromethane, and
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Published 09 Nov 2017

Photobleaching of YOYO-1 in super-resolution single DNA fluorescence imaging

  • Joseph R. Pyle and
  • Jixin Chen

Beilstein J. Nanotechnol. 2017, 8, 2296–2306, doi:10.3762/bjnano.8.229

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  • resistivity of 18 MΩ cm−1. Glass coverslips were first cleaned by sonication in 1% detergent (Liquinox) followed by rinsing with 18 MΩ water. Then the coverslips were immersed in 1:1:5 (v/v/v) of ammonium hydroxide/hydrogen peroxide/water for 15 min at 60 °C. Afterwards they were rinsed with water and dried
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Published 02 Nov 2017

Enhanced catalytic activity without the use of an external light source using microwave-synthesized CuO nanopetals

  • Govinda Lakhotiya,
  • Sonal Bajaj,
  • Arpan Kumar Nayak,
  • Debabrata Pradhan,
  • Pradip Tekade and
  • Abhimanyu Rana

Beilstein J. Nanotechnol. 2017, 8, 1167–1173, doi:10.3762/bjnano.8.118

Graphical Abstract
  • found to be less effective as compared to other metal oxides [8][9][10][11][12]. Thus, in order to enhance its photocatalytic activity, CuO can be used with hydrogen peroxide (H2O2) [12][13][14][15][16][17][18][19][20][21]. However, the degradation time of dyes is an important problem when using CuO as
  • /visible). A corresponding mechanism for the fast degradation observes was also proposed. Experimental Materials and instrumentation Commercial, high-grade copper sulphate (CuSO4·5H2O, 99.95%), sodium hydroxide (NaOH), ethanol (C2H5OH), acetone (C3H6O), methylene blue (MB), hydrogen peroxide (H2O2, 30
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Published 30 May 2017

ZnO nanoparticles sensitized by CuInZnxS2+x quantum dots as highly efficient solar light driven photocatalysts

  • Florian Donat,
  • Serge Corbel,
  • Halima Alem,
  • Steve Pontvianne,
  • Lavinia Balan,
  • Ghouti Medjahdi and
  • Raphaël Schneider

Beilstein J. Nanotechnol. 2017, 8, 1080–1093, doi:10.3762/bjnano.8.110

Graphical Abstract
  • solution. A mechanism for the degradation pathways mediated by the ZnO/ZCIS catalyst is proposed. Interestingly, hydrogen peroxide, H2O2, and singlet molecular oxygen, 1O2, were found to play a key role in the oxidation of Orange II. Experimental Materials Indium acetate (In(OAc)3, 99.99%, Sigma), zinc
  • singlet oxygen and hydrogen peroxide play a key role in the degradation of the dye. The improved solar light photocatalytic activity of the ZnO/ZCIS composite is achieved by the increased lifetime of charge carrier transfer and by the increased light absorption in the visible region due to the
  • of the ZnO/ZCIS photocatalyst. Concentration of (a) hydroxyl and (b) superoxide radicals and (c) hydrogen peroxide produced by ZnO and ZnO/ZCIS particles under irradiation using a Hg–Xe lamp. Concentrations of hydroxyl and superoxide radicals and hydrogen peroxide were determined after 30 min, 1 h
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Published 17 May 2017

Nanostructured carbon materials decorated with organophosphorus moieties: synthesis and application

  • Giacomo Biagiotti,
  • Vittoria Langè,
  • Cristina Ligi,
  • Stefano Caporali,
  • Maurizio Muniz-Miranda,
  • Anna Flis,
  • K. Michał Pietrusiewicz,
  • Giacomo Ghini,
  • Alberto Brandi and
  • Stefano Cicchi

Beilstein J. Nanotechnol. 2017, 8, 485–493, doi:10.3762/bjnano.8.52

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  • 12 was confirmed by the signal at 2118 cm−1 in the FTIR spectra (see Supporting Information File 1, Figures S9 and S10). The ICP-AES was used to determine the amount of phosphorus in the complex matrix. The samples were previously mineralized by treatment with nitric acid and a hydrogen peroxide
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Published 22 Feb 2017

Optical and photocatalytic properties of TiO2 nanoplumes

  • Viviana Scuderi,
  • Massimo Zimbone,
  • Maria Miritello,
  • Giuseppe Nicotra,
  • Giuliana Impellizzeri and
  • Vittorio Privitera

Beilstein J. Nanotechnol. 2017, 8, 190–195, doi:10.3762/bjnano.8.20

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  • ). Unfortunately, the synthesis of this remarkable material requires high pressures of H2 (up to 20 bar) and long annealing treatments (up to 5 days). Our group investigated the possibility to synthesize black TiO2 by an easier method [20]. In 2016 we employed, for the first time [21], hydrogen peroxide etching of
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Published 18 Jan 2017

Streptavidin-coated gold nanoparticles: critical role of oligonucleotides on stability and fractal aggregation

  • Roberta D'Agata,
  • Pasquale Palladino and
  • Giuseppe Spoto

Beilstein J. Nanotechnol. 2017, 8, 1–11, doi:10.3762/bjnano.8.1

Graphical Abstract
  • hydrogen peroxide (30%) and concentrated sulfuric acid (98%). Caution: piranha solution reacts violently with most organic materials and should be handled with extreme care. AuNPs were synthesized by citrate reduction of HAuCl4·3H2O [65]. The trisodium citrate concentration has been shown to be crucial for
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Published 02 Jan 2017

Facile fabrication of luminescent organic dots by thermolysis of citric acid in urea melt, and their use for cell staining and polyelectrolyte microcapsule labelling

  • Nadezhda M. Zholobak,
  • Anton L. Popov,
  • Alexander B. Shcherbakov,
  • Nelly R. Popova,
  • Mykhailo M. Guzyk,
  • Valeriy P. Antonovich,
  • Alla V. Yegorova,
  • Yuliya V. Scrypynets,
  • Inna I. Leonenko,
  • Alexander Ye. Baranchikov and
  • Vladimir K. Ivanov

Beilstein J. Nanotechnol. 2016, 7, 1905–1917, doi:10.3762/bjnano.7.182

Graphical Abstract
  • , and cellular luminescence was weak (Figure 5, top). Treatment with hydrogen peroxide (8 μg/mL, 15 min) initiated activation of oxidative stress in the cells; upon such treatment, the cells were stained more intensely (Figure 5, bottom). The use of O-dots allowed a clear visualization of the oxidative
  • with hydrogen peroxide, whose activation includes protein synthesis and ribosome formation. It should be noted that cells at the stage of division, or recently divided cells, absorb O-dots more actively, which may be due to the higher intensity of metabolic processes, and, as a consequence, they have a
  • greater sensitivity to oxidative stress. For comparison, a similar staining manipulation was carried out for the same ST cells treated with hydrogen peroxide, but without subsequent fixation (Supporting Information File 1, Figure S20). The micrographs obtained demonstrate that only some of the cells were
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Published 02 Dec 2016

Role of RGO support and irradiation source on the photocatalytic activity of CdS–ZnO semiconductor nanostructures

  • Suneel Kumar,
  • Rahul Sharma,
  • Vipul Sharma,
  • Gurunarayanan Harith,
  • Vaidyanathan Sivakumar and
  • Venkata Krishnan

Beilstein J. Nanotechnol. 2016, 7, 1684–1697, doi:10.3762/bjnano.7.161

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  • permanganate (KMnO4) and hydrogen peroxide (H2O2) were purchased from Merck. Zinc chloride (ZnCl2), sodium hydroxide (NaOH), cadmium acetate dihydrate (Cd(OOCCH3)2·2H2O), sodium sulfide (Na2S), ammonia solution and methyl orange were also supplied by Merck. Polyvinyl pyrrolidone (PVP) used in synthesis was
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Published 11 Nov 2016

Graphene-enhanced plasmonic nanohole arrays for environmental sensing in aqueous samples

  • Christa Genslein,
  • Peter Hausler,
  • Eva-Maria Kirchner,
  • Rudolf Bierl,
  • Antje J. Baeumner and
  • Thomas Hirsch

Beilstein J. Nanotechnol. 2016, 7, 1564–1573, doi:10.3762/bjnano.7.150

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  • . Experimental Nanohole array fabrication All substrates are based on glass slides (20 × 20 mm2) of F1-Type with a refractive index of 1.61 (Mivitec GmbH, Sinzing, Germany). All glass slides were cleaned in piranha solution for 90 min and in a mixture of water, ammonia and hydrogen peroxide at a 5:1:1 (v/v/v
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Published 01 Nov 2016

Development of highly faceted reduced graphene oxide-coated copper oxide and copper nanoparticles on a copper foil surface

  • Rebeca Ortega-Amaya,
  • Yasuhiro Matsumoto,
  • Andrés M. Espinoza-Rivas,
  • Manuel A. Pérez-Guzmán and
  • Mauricio Ortega-López

Beilstein J. Nanotechnol. 2016, 7, 1010–1017, doi:10.3762/bjnano.7.93

Graphical Abstract
  • Reproquifin. Hydrogen peroxide (30%), acetone (99.77%) and copper foil (99.99%) were obtained from J.T. Baker. Ethanol (99.5%) was purchased from Reasol. All reagents were used as received without further purification. Preparation of the rGO sheets and copper-based nanoparticles composite As described in our
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Published 11 Jul 2016

Dielectrophoresis of gold nanoparticles conjugated to DNA origami structures

  • Anja Henning-Knechtel,
  • Matthew Wiens,
  • Mathias Lakatos,
  • Andreas Heerwig,
  • Frieder Ostermaier,
  • Nora Haufe and
  • Michael Mertig

Beilstein J. Nanotechnol. 2016, 7, 948–956, doi:10.3762/bjnano.7.87

Graphical Abstract
  • evaporated and finally the photoresist was removed with the remover solution AR 300-72 (Allresist) by sonication. Dielectrophoretic manipulation of the 6HBs The gold pads were cleaned by immersing them stepwise for 20 s into 100% fuming nitric acid (Merck) and 1 min into a neutralization solution [hydrogen
  • peroxide (30 wt % in water; Merck), ammonia solution (25 wt % in water; Merck) and ddH2O in the ratio 1:1:5] and rinsed with ddH2O. Then, such a glass slide was placed in an inverted optical microscope (Axiovert 200M, Carl Zeiss MicroImaging) equipped with a 100×/1.45 numerical aperture oil immersion
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Published 01 Jul 2016

Unraveling the neurotoxicity of titanium dioxide nanoparticles: focusing on molecular mechanisms

  • Bin Song,
  • Yanli Zhang,
  • Jia Liu,
  • Xiaoli Feng,
  • Ting Zhou and
  • Longquan Shao

Beilstein J. Nanotechnol. 2016, 7, 645–654, doi:10.3762/bjnano.7.57

Graphical Abstract
  • injure tissues and organs, and is often associated with diseases and aging. Meanwhile, oxidative stress, caused by NPs, is the most important and widely accepted mechanism of nano-neurotoxicity. ROS, such as superoxide, hydrogen peroxide, and hydroxyl radicals, are natural products of the regular oxygen
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Published 29 Apr 2016

Novel roles for well-known players: from tobacco mosaic virus pests to enzymatically active assemblies

  • Claudia Koch,
  • Fabian J. Eber,
  • Carlos Azucena,
  • Alexander Förste,
  • Stefan Walheim,
  • Thomas Schimmel,
  • Alexander M. Bittner,
  • Holger Jeske,
  • Hartmut Gliemann,
  • Sabine Eiben,
  • Fania C. Geiger and
  • Christina Wege

Beilstein J. Nanotechnol. 2016, 7, 613–629, doi:10.3762/bjnano.7.54

Graphical Abstract
  • enabled a colorimetric detection of catalytic activity and the quantification of glucose [152][166][167]. Specifically, GOx catalyzes glucose oxidation to D-glucono-1,5-lactone, thereby producing hydrogen peroxide [168]. This is a substrate for HRP, which reduces it to water, and, as a side reaction, can
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Published 25 Apr 2016

Characterization of spherical domains at the polystyrene thin film–water interface

  • Khurshid Ahmad,
  • Xuezeng Zhao,
  • Yunlu Pan and
  • Danish Hussain

Beilstein J. Nanotechnol. 2016, 7, 581–590, doi:10.3762/bjnano.7.51

Graphical Abstract
  • preparation Polystyrene thin films were spin-coated onto silicon dioxide wafers. Prior to spin coated, the silicon dioxide wafers were cleaned using piranha solution of 3:1 (v/v) sulfuric acid/hydrogen peroxide for 30 min [8]. The wafers were further cleaned with acetone, ethanol and DI water in an ultrasonic
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Published 20 Apr 2016

Surface coating affects behavior of metallic nanoparticles in a biological environment

  • Darija Domazet Jurašin,
  • Marija Ćurlin,
  • Ivona Capjak,
  • Tea Crnković,
  • Marija Lovrić,
  • Michal Babič,
  • Daniel Horák,
  • Ivana Vinković Vrček and
  • Srećko Gajović

Beilstein J. Nanotechnol. 2016, 7, 246–262, doi:10.3762/bjnano.7.23

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  • ), Brij 35 (5 mL, 0.45 mM) and hydrogen peroxide (0.105 mL, 30 wt %) with 44.5 mL ultrapure water. The mixture was vigorously stirred at room temperature in the presence of air. The final volume was kept at 50 mL. To this mixture, NaBH4 (0.4 mL, 200 mM) was rapidly injected, generating a colloid that was
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Published 15 Feb 2016

Temperature-dependent breakdown of hydrogen peroxide-treated ZnO and TiO2 nanoparticle agglomerates

  • Sinan Sabuncu and
  • Mustafa Çulha

Beilstein J. Nanotechnol. 2015, 6, 1897–1903, doi:10.3762/bjnano.6.193

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  • , the influence of hydrogen peroxide (H2O2) treatment on the dispersion of ZnO and TiO2 nanoparticle (NP) agglomerates as a function of temperature is studied. The H2O2 treatment of the MONPs increases the density of hydroxyl (–OH) groups on the NP surface, as verified with FTIR spectroscopy. The
  • individual nanoparticles. It was shown that the combined effect of hydroxylation and heating enhances the dispersion of ZnO and TiO2 NPs in water. Keywords: agglomeration; hydrogen peroxide; metal oxide nanoparticles; TiO2; ZnO; Introduction Dispersion of metal oxide nanoparticles (MONPs) in aqueous media
  • demonstrated that the treatment of ZnO NPs with hydrogen peroxide (H2O2) affected the surface properties and as a result the cytotoxicity of the ZnO NPs was found to decrease [20]. H2O2 is a powerful oxidizer and it is therefore routinely used in many cleaners and bleaches. Living systems can produce hydrogen
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Published 14 Sep 2015

Optimized design of a nanostructured SPCE-based multipurpose biosensing platform formed by ferrocene-tethered electrochemically-deposited cauliflower-shaped gold nanoparticles

  • Wicem Argoubi,
  • Maroua Saadaoui,
  • Sami Ben Aoun and
  • Noureddine Raouafi

Beilstein J. Nanotechnol. 2015, 6, 1840–1852, doi:10.3762/bjnano.6.187

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  • biosensor (Figure 6a and Figure 6b). Selective detection of H2O2 The simplicity of design and the ease of layer-by-layer modification make this surface an excellent electrochemical sensing platform for hydrogen peroxide detection. Figure 6c shows typical chronoamperometric responses of the ferrocene moiety
  • sought to be detected in picogramm (ng/mL) levels and hydrogen peroxide in micromolar levels. From the table, we can see that the developed biosensors are more sensitive than most of those recently published in literature using ferrocene or quinone as electron mediators or immunosensing event transducers
  • peroxide reduction. Real sample analysis The two devices have been successfully applied to the detection of hIgG and hydrogen peroxide in human blood serum and local honey [52] chosen as real complex samples, respectively. Before the analysis, the two samples of honey and serum were diluted to 10× and to
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Published 01 Sep 2015

Scalable, high performance, enzymatic cathodes based on nanoimprint lithography

  • Dmitry Pankratov,
  • Richard Sundberg,
  • Javier Sotres,
  • Dmitry B. Suyatin,
  • Ivan Maximov,
  • Sergey Shleev and
  • Lars Montelius

Beilstein J. Nanotechnol. 2015, 6, 1377–1384, doi:10.3762/bjnano.6.142

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  • concomitant reduction of O2 directly to H2O in a trinuclear Cu cluster (T2/T3 Cu cluster) positioned 12–13 Å away [5][6][7], without releasing reactive O2 species, such as hydrogen peroxide or superoxide radicals [8][9]. Three-dimensional electrodes for enzyme-based cathodes are usually used to design high
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Published 22 Jun 2015

Formation of substrate-based gold nanocage chains through dealloying with nitric acid

  • Ziren Yan,
  • Ying Wu and
  • Junwei Di

Beilstein J. Nanotechnol. 2015, 6, 1362–1368, doi:10.3762/bjnano.6.140

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  • Suzhou NSG Electronics Co. Ltd. (Suzhou, China). Prior to use, it was divided into the strips (50 × 6 mm). All chemicals were of analytical grade and used as received without any further purification. Silver nitrate (AgNO3), hydrogen tetrachloroaurate (HAuCl4), nitric acid (HNO3), hydrogen peroxide (H2O2
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Published 18 Jun 2015

Patterning technique for gold nanoparticles on substrates using a focused electron beam

  • Takahiro Noriki,
  • Shogo Abe,
  • Kotaro Kajikawa and
  • Masayuki Shimojo

Beilstein J. Nanotechnol. 2015, 6, 1010–1015, doi:10.3762/bjnano.6.104

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  • contribute to the fabrication of nanodevices such as plasmonic waveguides. Experimental Step (i): amino-epoxy method A polished Si wafer, with dimensions of about 3 × 1 mm, was used as the substrate. The substrate was immersed in a mixture (1:3 by volume) of hydrogen peroxide (30%) and concentrated sulfuric
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Published 22 Apr 2015
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