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Journal articles on the topic 'Nanoconverter'

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1

Sokolov, S. V., and V. V. Kamenskij. "Optical analog-to-digital nanoconverter." Radioelectronics and Communications Systems 52, no. 5 (2009): 265–68. http://dx.doi.org/10.3103/s0735272709050070.

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2

Cong, Cong, Bian Jiaxin, Xiaokang Liu, et al. "A homologous-targeting “nanoconverter” with variable size for deep tumor penetration and immunotherapy." Journal of Materials Chemistry B 9, no. 9 (2021): 2323–33. http://dx.doi.org/10.1039/d0tb02908d.

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3

Zhang, Ying, Xiaoyu Li, Jianqiang Li, Chenyu Ma, Lijiang Guo, and Xiangmin Meng. "Solar-driven phase change microencapsulation with efficient Ti4O7 nanoconverter for latent heat storage." Nano Energy 53 (November 2018): 579–86. http://dx.doi.org/10.1016/j.nanoen.2018.09.018.

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4

Song, Bo, Jiao Shi, Jinbao Wang, Jianhu Shen, and Kun Cai. "Ideal Oscillation of a Hydrogenated Deformable Rotor in a Gigahertz Rotation–Translation Nanoconverter at Low Temperatures." Sensors 20, no. 7 (2020): 1969. http://dx.doi.org/10.3390/s20071969.

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It was discovered that large-amplitude axial oscillation can occur on a rotor with an internally hydrogenated deformable part (HDP) in a rotation–translation nanoconverter. The dynamic outputs of the system were investigated using molecular dynamics simulations. When an input rotational frequency (100 GHz > ω > 20 GHz) was applied at one end of the rotor, the HDP deformed under the centrifugal and van der Waals forces, which simultaneously led to the axial translation of the other end of the rotor. Except at too high an input rotational frequency (e.g., >100 GHz), which led to eccentr
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5

Fan, Xiaoyue, Xiaolin Qiu, Lixin Lu, and Binglin Zhou. "Full-spectrum light-driven phase change microcapsules modified by CuS-GO nanoconverter for enhancing solar energy conversion and storage capability." Solar Energy Materials and Solar Cells 223 (May 2021): 110937. http://dx.doi.org/10.1016/j.solmat.2020.110937.

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6

Loukanov, Alexandre R., Alexei G. Basnakian, Ryuzo Kawamura, et al. "Light-Powered Nanoconverters Cytotoxic to Breast Cancer Cells." Journal of Physical Chemistry C 122, no. 14 (2018): 7916–24. http://dx.doi.org/10.1021/acs.jpcc.7b11779.

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7

Valencia-Ortega, G., and L. A. Arias-Hernandez. "Energetic optimization effects in single resonant tunneling GaAs-nanoconverters." Physica E: Low-dimensional Systems and Nanostructures 124 (October 2020): 114231. http://dx.doi.org/10.1016/j.physe.2020.114231.

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8

Chou, Cheng-Hsuan, Cheng-Dah Chen, and C. R. Chris Wang. "Highly Efficient, Wavelength-Tunable, Gold Nanoparticle Based Optothermal Nanoconvertors." Journal of Physical Chemistry B 109, no. 22 (2005): 11135–38. http://dx.doi.org/10.1021/jp0444520.

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9

Song, Bo, Jiao Shi, Chunwei Hu, Jinbao Wang, Kun Cai, and Chao Zhang. "Recoverability of a gigahertz rotation-translation nanoconvertor with hydrogenated deformable rotor at room temperature." Nanotechnology 30, no. 46 (2019): 465301. http://dx.doi.org/10.1088/1361-6528/ab3b7c.

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10

Phuengkham, Hathaichanok, Chanyoung Song, and Yong Taik Lim. "A Designer Scaffold with Immune Nanoconverters for Reverting Immunosuppression and Enhancing Immune Checkpoint Blockade Therapy." Advanced Materials 31, no. 42 (2019): 1903242. http://dx.doi.org/10.1002/adma.201903242.

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11

Wang, Jingjing, Wei Zhang, Dachong Gu, et al. "Matthew effect photoimmunotheranostics enabled by proton-driven nanoconverter." Chemical Engineering Journal, February 2023, 142157. http://dx.doi.org/10.1016/j.cej.2023.142157.

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12

"Editorial Note: Matthew effect photoimmunotheranostics enabled by proton-driven nanoconverter (Chemical Engineering Journal, Volume 462, 15 April 2023, 142157)." Chemical Engineering Journal, June 2024, 153040. http://dx.doi.org/10.1016/j.cej.2024.153040.

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13

Wang, Luyao, Weisheng Zhu, Yuan Zhou, et al. "A biodegradable and near-infrared light-activatable photothermal nanoconvertor for bacterial inactivation." Journal of Materials Chemistry B, 2022. http://dx.doi.org/10.1039/d1tb01781k.

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A new nano-antibacterial strategy based on a biodegradable charge-transfer nanocomplex (CTN) was developed, in which the CTN acted as a high-efficiency near-infrared light-activatable photothermal nanoconvertor.
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14

Song, Bo, Kun Cai, Jiao Shi, and Qing-Hua Qin. "Rotation-induced axial oscillation of a composite nanoconvertor at low temperature." Journal of Vibration and Control, June 30, 2020, 107754632093711. http://dx.doi.org/10.1177/1077546320937112.

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We propose a model of a nanostructure which can transform an input rotation into an output oscillation. In the model, the rotor has two identical internally hydrogenated deformable parts. The mechanism is that the rotation-induced centrifugal force and van der Waals force drive the recoverable deformation of the hydrogenated deformable parts, which gives rise to the axial translation of the free end of the rotor. Once the two hydrogenated deformable parts deform periodically, the free end of the rotor oscillates periodically in the axial direction. Molecular dynamics simulations are conducted
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15

Zhang, Yuting, Aoxue Zhong, Juan Min, et al. "Biomimetic Responsive Nanoconverters with Immune Checkpoint Blockade Plus Antiangiogenesis for Advanced Hepatocellular Carcinoma Treatment." ACS Applied Materials & Interfaces, February 2, 2024. http://dx.doi.org/10.1021/acsami.3c18140.

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