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Journal articles on the topic 'AgInS₂/ZnS'

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1

Chen, Siqi, Violeta Demillo, Minggen Lu, and Xiaoshan Zhu. "Preparation of photoluminescence tunable Cu-doped AgInS2 and AgInS2/ZnS nanocrystals and their application as cellular imaging probes." RSC Advances 6, no. 56 (2016): 51161–70. http://dx.doi.org/10.1039/c6ra09494e.

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2

Kowalik, Patrycja, Sebastian G. Mucha, Katarzyna Matczyszyn, et al. "Heterogeneity induced dual luminescence properties of AgInS2 and AgInS2–ZnS alloyed nanocrystals." Inorganic Chemistry Frontiers 8, no. 14 (2021): 3450–62. http://dx.doi.org/10.1039/d1qi00566a.

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In the PL spectra of heterogeneous nanocrystals (In<sub>2</sub>S<sub>3</sub>–AgInS<sub>2</sub> and In<sub>2</sub>S<sub>3</sub>–AgInS<sub>2</sub>–ZnS) two distinctly different peaks could be found at 430 and 710–515 nm.
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3

Shamirian, Armen, Oliver Appelbe, Qingbei Zhang, Balaji Ganesh, Stephen J. Kron, and Preston T. Snee. "A toolkit for bioimaging using near-infrared AgInS2/ZnS quantum dots." Journal of Materials Chemistry B 3, no. 41 (2015): 8188–96. http://dx.doi.org/10.1039/c5tb00247h.

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4

Chevallier, Théo, Gilles Le Blevennec, and Frédéric Chandezon. "Photoluminescence properties of AgInS2–ZnS nanocrystals: the critical role of the surface." Nanoscale 8, no. 14 (2016): 7612–20. http://dx.doi.org/10.1039/c5nr07082a.

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5

Jagadeeswararao, Metikoti, Sunita Dey, Angshuman Nag, and C. N. R. Rao. "Visible light-induced hydrogen generation using colloidal (ZnS)0.4(AgInS2)0.6 nanocrystals capped by S2− ions." Journal of Materials Chemistry A 3, no. 16 (2015): 8276–79. http://dx.doi.org/10.1039/c5ta01240f.

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Non-toxic and visible-light active S<sup>2−</sup>-capped (ZnS)<sub>0.4</sub>(AgInS<sub>2</sub>)<sub>0.6</sub> nanocrystals exhibit high photocatalytic activity for H<sub>2</sub> evolution from water without requiring any co-catalyst.
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6

Fahmi, Mochamad Zakki, Keng-Liang Ou, Jem-Kun Chen, Ming-Hua Ho, Shin-Hwa Tzing, and Jia-Yaw Chang. "Development of bovine serum albumin-modified hybrid nanoclusters for magnetofluorescence imaging and drug delivery." RSC Adv. 4, no. 62 (2014): 32762–72. http://dx.doi.org/10.1039/c4ra05785f.

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Magnetofluorescent nanoclusters containing oil-soluble nanoparticles of MnFe<sub>2</sub>O<sub>4</sub> and AgInS<sub>2</sub>–ZnS QDs are prepared. The nanoclusters possess photoluminescent and magnetic properties as well as an excellent specific targeting and drug delivery capability on HeLa cancer cell.
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7

Zhao, Peng, Jing Zhang, Yihua Zhu, et al. "A novel strategy for the aqueous synthesis of down-/up-conversion nanocomposites for dual-modal cell imaging and drug delivery." J. Mater. Chem. B 2, no. 47 (2014): 8372–77. http://dx.doi.org/10.1039/c4tb01445f.

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A highly efficient multifunctional nanoplatform for dual-modal luminescence imaging and pH-responsive drug delivery has been developed on the basis of a facile and novel strategy by covalently binding up-conversion luminescent NaYF<sub>4</sub>:Yb,Er nanoparticles with down-conversion fluorescent AgInS<sub>2</sub>–ZnS quantum dots.
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8

Мазинг, Д. С., Н. М. Романов, В. А. Мошников, О. А. Александрова та О. А. Корепанов. "Исследование спектров фотолюминесценции нанокристаллов AgInS-=SUB=-2-=/SUB=-/ZnS при воздействии γ-излучения". Письма в журнал технической физики 45, № 21 (2019): 34. http://dx.doi.org/10.21883/pjtf.2019.21.48471.17948.

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The effect of different doses of γ-radiation from a 137Cs source on photoluminescence of Ag-In-S nanocrystals covered with a shell of wider bandgap ZnS was investigated. The dynamics of changes in the nanocrystals photoluminescence depending on the dose of γ-radiation was shown. It was established that the AgInS2 / ZnS nanoparticles retain their photoluminescent properties and colloidal stability upon reaching the absorbed dose of 6 • 10^3 Gy (to water). Residual photoluminescence persisted when the absorbed dose reached 10^6 Gy. It was shown that AgInS2 / ZnS nanocrystals can be used in medic
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9

Kurshanov, D. A., Yu A. Gromova, S. A. Cherevkov, et al. "Non-toxic ternary quantum dots AgInS-=SUB=-2-=/SUB=- and AgInS-=SUB=-2-=/SUB=-/ZnS: synthesis and optical properties-=SUP=-*-=/SUP=-." Журнал технической физики 125, no. 12 (2018): 844. http://dx.doi.org/10.21883/os.2018.12.46949.248-18.

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10

Takayama, Tomoaki, Ko Sato, Takehiro Fujimura, Yuki Kojima, Akihide Iwase, and Akihiko Kudo. "Photocatalytic CO2 reduction using water as an electron donor by a powdered Z-scheme system consisting of metal sulfide and an RGO–TiO2 composite." Faraday Discussions 198 (2017): 397–407. http://dx.doi.org/10.1039/c6fd00215c.

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CuGaS<sub>2</sub>, (AgInS<sub>2</sub>)<sub>x</sub>–(ZnS)<sub>2−2x</sub>, Ag<sub>2</sub>ZnGeS<sub>4</sub>, Ni- or Pb-doped ZnS, (ZnS)<sub>0.9</sub>–(CuCl)<sub>0.1</sub>, and ZnGa<sub>0.5</sub>In<sub>1.5</sub>S<sub>4</sub> showed activities for CO<sub>2</sub> reduction to form CO and/or HCOOH in an aqueous solution containing K<sub>2</sub>SO<sub>3</sub> and Na<sub>2</sub>S as electron donors under visible light irradiation. Among them, CuGaS<sub>2</sub> and Ni-doped ZnS photocatalysts showed relatively high activities for CO and HCOOH formation, respectively. CuGaS<sub>2</sub> was applied in a p
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11

Vitshima, Nozikumbuzo Anati, Bongiwe Silwana, Ncediwe Tsolekile, and Mangaka C. Matoetoe. "Effect of ZnS coating on the optoelectronic properties of aqueous glutathione capped AgInS quantum dots." Journal of Alloys and Compounds 900 (April 2022): 163386. http://dx.doi.org/10.1016/j.jallcom.2021.163386.

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12

Maji, Swarup Kumar. "Luminescence-Tunable ZnS–AgInS2 Nanocrystals for Cancer Cell Imaging and Photodynamic Therapy." ACS Applied Bio Materials 5, no. 3 (2022): 1230–38. http://dx.doi.org/10.1021/acsabm.1c01247.

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13

Kurshanov D.A., Arefina I. A., Stepanova M. S., Dubavik A., and Baranov A. V. "Effect of Fe-=SUB=-3-=/SUB=-O-=SUB=-4-=/SUB=- nanoparticle concentration on the luminescence of AgInS-=SUB=-2-=/SUB=-/ZnS in hybrid complex CaCO-=SUB=-3-=/SUB=--Fe-=SUB=-3-=/SUB=-O-=SUB=-4-=/SUB=-@AgInS-=SUB=-2-=/SUB=-/ZnS." Optics and Spectroscopy 130, no. 14 (2022): 2134. http://dx.doi.org/10.21883/eos.2022.14.53999.1418-21.

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In this paper, we studied the properties of a multifunctional system, in which the luminescent and magnetic properties are combined. The calcium carbonate microspheres are used as porous matrices for complexes combining luminescence properties of AgInS2/ZnS quantum dots and magnetic properties of Fe3O4 nanoparticles. The study investigates the effect of magnetic nanoparticles concentration on optical properties of quantum dots in CaCO3-Fe3O4@AgInS2/ZnS complexes. It is shown that applying calcium carbonate microspheres as a matrix permits to reduce quenching of the quantum dots luminescence. K
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14

Kurshanov, D. A., I. A. Arefina, M. S. Stepanova, A. Dubavik, and A. V. Baranov. "Effect of Fe-=SUB=-3-=/SUB=-O-=SUB=-4-=/SUB=- nanoparticle concentration on the luminescence of AgInS-=SUB=-2-=/SUB=-/ZnS in hybrid complex CaCO-=SUB=-3-=/SUB=--Fe-=SUB=-3-=/SUB=-O-=SUB=-4-=/SUB=-@AgInS-=SUB=-2-=/SUB=-/ZnS-=SUP=-*-=/SUP=-." Оптика и спектроскопия 129, no. 11 (2021): 1424. http://dx.doi.org/10.21883/os.2021.11.51649.1418-21.

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In this paper, we studied the properties of a multifunctional system, in which the luminescent and magnetic properties are combined. The calcium carbonate microspheres are used as porous matrices for complexes combining luminescence properties of AgInS2/ZnS quantum dots and magnetic properties of Fe3O4 nanoparticles. The study investigates the effect of magnetic nanoparticles concentration on optical properties of quantum dots in CaCO3-Fe3O4@AgInS2/ZnS complexes. It is shown that applying calcium carbonate microspheres as a matrix permits to reduce quenching of the quantum dots luminescence. K
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15

Yang, Wentao, Weisheng Guo, Tingbin Zhang, et al. "Synthesis of aqueous AgInS/ZnS@PEI as a self-indicating nonviral vector for plasmid DNA self-tracking delivery." Journal of Materials Chemistry B 3, no. 43 (2015): 8518–27. http://dx.doi.org/10.1039/c5tb01333j.

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16

Kameyama, Tatsuya, Shuhei Tsuneizumi, Taro Uematsu, Susumu Kuwabata, and Tsukasa Torimoto. "(Invited) Effect of Cu Doping on the Energy Structure of Dumbbell-Shaped ZnS-AgInS2 Nanocrystals." ECS Meeting Abstracts MA2023-01, no. 37 (2023): 2133. http://dx.doi.org/10.1149/ma2023-01372133mtgabs.

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Colloidal semiconductor nanocrystals (NCs) have been intensively developed for applications in photovoltaics, light-emitting diodes, electroluminescent devices, and biological markers, due to their tunable light absorption and excellent light emission properties. Among them, group I-III-VI-based multinary semiconductor NCs, such as CuInS2, CuInSe2 and AgInS2, have received significant attention for the application to solar energy conversion systems because of their large absorption coefficient and low toxicity. Recently, we have successfully prepared ZnS-AgInS2 solid solution (ZAIS) NCs and op
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17

Soheyli, Ehsan, Behnaz Ghaemi, Reza Sahraei, Zahra Sabzevari, Sharmin Kharrazi, and Amir Amani. "Colloidal synthesis of tunably luminescent AgInS-based/ZnS core/shell quantum dots as biocompatible nano-probe for high-contrast fluorescence bioimaging." Materials Science and Engineering: C 111 (June 2020): 110807. http://dx.doi.org/10.1016/j.msec.2020.110807.

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18

Choi, Kang Sik, Bo Keuk Bang, Pan Kee Bae, Yong-Rok Kim, and Chang Hae Kim. "Synthesis of Fe3O4–ZnS/AgInS2 Composite Nanoparticles Using a Hydrophobic Interaction." Journal of Nanoscience and Nanotechnology 13, no. 3 (2013): 1820–23. http://dx.doi.org/10.1166/jnn.2013.6993.

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19

Torimoto, Tsukasa, Seiya Koyama, Tatsuya Kameyama, and Susumu Kuwabata. "(Invited) Preparation of Dumbbell-Shaped Nanocrystals Composed of ZnS-AgInS2 Solid Solution and Their Photocatalytic H2 Evolution Activity." ECS Meeting Abstracts MA2018-01, no. 31 (2018): 1886. http://dx.doi.org/10.1149/ma2018-01/31/1886.

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I-III-VI2 ternary semiconductor nanocrystals, such as CuInS2 and AgInS2, exhibiting the quantum size effect have attracted much attention for the application to solar energy conversion systems because of their strong absorption coefficient and low toxicity. The optical properties of these particles are tunable by controlling the particle size. Recently we have successfully prepared anisotropic-shaped nanocrystals of ZnS-AgInS2 solid solution ((AgIn)xZn2(1-x)S2, ZAIS). Their photocatalytic H2 evolution activity could be controlled by the chemical composition as well as by the particle size,(1)
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20

Istomina, M. S., E. I. Pochkaeva, D. L. Sonin, et al. "Research of the peculiarities of colloidal quantum dots of AgInS2/ZnS and chitosan nanoparticles labeled with indocyanine green as the fluorescent labels for biomedical applications." Regional blood circulation and microcirculation 17, no. 1 (2018): 74–82. http://dx.doi.org/10.24884/1682-6655-2018-17-1-74-82.

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The research is devoted to the investigating of the possibility of using colloidal quantum dots, covered by various layers and nanoparticles of chitosan labelled with indocyanin green for fluorescence imaging in vitro and in vivo. Pure quantum dots and dots in the shell synthesized from 3-aminopropyltriethoxysilane and in the shell of albumin were investigated. Research using fluorescence Visualizer IVIS Lumina LT Series III (Perkin Elmer, USA) was conducted. The possibility of using quantum dots for in vitro diagnostics, and chitosan nanoparticles - in vitro and in vivo was presented.
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21

Cichy, Bartłomiej, Dominika Wawrzynczyk, Marek Samoc, and Wiesław Stręk. "Electronic properties and third-order optical nonlinearities in tetragonal chalcopyrite AgInS2, AgInS2/ZnS and cubic spinel AgIn5S8, AgIn5S8/ZnS quantum dots." Journal of Materials Chemistry C 5, no. 1 (2017): 149–58. http://dx.doi.org/10.1039/c6tc03854a.

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Electronic as well as third-order nonlinear optical properties of chalcopyrite AgInS<sub>2</sub> and non-stoichiometric spinel AgIn<sub>5</sub>S<sub>8</sub> quantum dots compared with corresponding Zn<sup>2+</sup> alloyed compounds are presented in this work.
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22

Rivaux, Céline, Tugce Akdas, Ranjana Yadav, et al. "Continuous Flow Aqueous Synthesis of Highly Luminescent AgInS2 and AgInS2/ZnS Quantum Dots." Journal of Physical Chemistry C, November 23, 2022. http://dx.doi.org/10.1021/acs.jpcc.2c06849.

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23

Li, Mengwei, Xuwen Gao, Xiaoxuan Ren, Yaojia Ai, Bin Zhang, and Guizheng Zou. "Potential-Selective Electrochemiluminescence of AgInS2/ZnS Nanocrystals and Its Immunoassay Application." Chemical Communications, 2024. http://dx.doi.org/10.1039/d4cc00888j.

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Potential-selective electrochemiluminescence (ECL) with maximum-emission-potential tunable from 0.95 to 0.30 V is achieved from AgInS2/ZnS nanocrystals, which is promissing to desgin multiplexed bioassay on commercialized ECL setups. The model system...
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24

Muñoz, Raybel, Eva Maria Santos, Alfredo Guevara, Rosa Vazquez, Nery Islas-Rodriguez, and Jose A. Rodriguez. "Fluorescence assay for acrylamide determination in fried products based on AgInS2/ZnS quantum dots." Analytical Methods, 2022. http://dx.doi.org/10.1039/d2ay00356b.

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AgInS2/ZnS quantum dots were synthesized via solvothermal aqueous phase using 3-mercaptopropionic acid as stabilizer. AgInS2/ZnS quantum dots were employed for acrylamide sensing under two strategies: 1) quenching of the fluorescence...
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25

Semynin, M. S., S. S. Rudyi, A. Y. Dubavik, A. V. Gavenchuk, A. V. Ivanov, and D. P. Shcherbinin. "Delivery of micro- and nanoparticles from solutions into a linear quadrupole trap using the paper spray method." European Journal of Mass Spectrometry, June 12, 2025. https://doi.org/10.1177/14690667251350268.

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In this paper, we develop and describe a technology for delivering micro- and nanoparticles from solutions into a linear quadrupole Paul trap using the paper spray method. The developed technology is based on electrospraying of colloids with the particles from paper cartridges into the electrodynamic trap. The proposed method has been experimentally verified using a colloid solution of AgInS 2 /ZnS quantum dots in toluene. It has been shown that electrospraying of the solution from a paper cartridge is observed when applying a DC voltage in the range of 5–12 kV. Stable retention of the deliver
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26

Ponomaryova, Tatiana S., Vera V. Olomskaya, Anatolii A. Abalymov, et al. "Visualization of 2D and 3D Tissue Models via Size-Selected Aqueous AgInS/ZnS Quantum Dots." ACS Applied Materials & Interfaces, July 26, 2024. http://dx.doi.org/10.1021/acsami.4c05681.

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27

Kulikova, Olga M., and Vladimir В. Sheinin. "Hybrid Nanoconjugates of Cationic Photosensitizers Zn(n’-MePy+)4 with Anionic Quantum Dots AgInS/ZnS/GSH." Macroheterocycles 18, no. 1 (2025). https://doi.org/10.6060/mhc246203s.

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28

Kurassova, Kamilla, Nikita Filatov, Sofia Karamysheva, et al. "Microfluidics-Driven Dripping Technique for Fabricating Polymer Microspheres Doped with AgInS2/ZnS Quantum Dots." ACS Omega, September 2, 2024. http://dx.doi.org/10.1021/acsomega.4c07270.

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29

Novikova, Anastasiya S., Тatiana S. Ponomaryova, and Irina Yu Goryacheva. "Fluorescent AgInS/ZnS quantum dots microplate and lateral flow immunoassays for folic acid determination in juice samples." Microchimica Acta 187, no. 8 (2020). http://dx.doi.org/10.1007/s00604-020-04398-1.

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30

Sun, Zhiguo, Yang Liu, Fuhua Wei, et al. "Aqueous AgInS2/ZnS Quantum Dot-Based Fluorescent Probes for Highly Selective Detection of Cu(II) Ions." ACS Applied Nano Materials, June 30, 2025. https://doi.org/10.1021/acsanm.5c02494.

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