Academic literature on the topic 'Sodium strontium silicate ion conductor'

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Journal articles on the topic "Sodium strontium silicate ion conductor"

1

Peet, Joseph R., Cory M. Widdifield, David C. Apperley, Paul Hodgkinson, Mark R. Johnson, and Ivana Radosavljević Evans. "Na+ mobility in sodium strontium silicate fast ion conductors." Chemical Communications 51, no. 96 (2015): 17163–65. http://dx.doi.org/10.1039/c5cc06644a.

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Variable temperature 23Na solid state NMR spectroscopy and spin-lattice relaxation measurements provide the first direct evidence of Na-ion mobility in sodium strontium silicate fast ion conductors.
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2

Jee, Youngseok, Xuan Zhao, and Kevin Huang. "On the cause of conductivity degradation in sodium strontium silicate ionic conductor." Chemical Communications 51, no. 47 (2015): 9640–42. http://dx.doi.org/10.1039/c5cc02638e.

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3

Chen, Yuliang, Xiangbiao Yin, Hao Fu, Zheyang Lin, Guangcan Ma, Xinpeng Wang, Qingsong Wang, and Fangqiang Chen. "Preparation of Porous Composite Phase Na Super Ionic Conductor Adsorbent by In Situ Process for Ultrafast and Efficient Strontium Adsorption from Wastewater." Metals 13, no. 4 (March 29, 2023): 677. http://dx.doi.org/10.3390/met13040677.

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Strontium, the main component of radioactive nuclear wastewater, is characterized by a high fission yield and an extended half-life. It is easily absorbed by the human body, thus greatly threatening the environment and the human body. In this study, a mesoporous composite phase sodium superionic conductor (NVP@NMP) was synthesized by the droplet template method, and the rapid capture of Sr2+ from wastewater was achieved by constructing a nano-heterogeneous interface to increase the ion diffusion rate. NVP@NMP showed efficient and rapid removal of strontium ions in adsorption kinetics, isothermal adsorption, solution pH, and interfering ions concentration tests. Especially the equilibrium time of 2 min for strontium absorption by NVP@NMP and a maximum theoretical adsorption capacity of 361.36 mg/g. The adsorption process was spontaneous, endothermic, and feasible. At higher concentrations of other competing ions (Na, K, Ca, Mg, and Cs), the adsorbent exhibited higher selectivity towards Sr2+.TEM, XPS, and XRD analyses revealed that ion exchange was the main mechanism for the NVP@NMP ultrafast adsorption of Sr2+. In this research, we investigated the feasibility of ultrafast strontium capture by sodium superionic conductor structured phosphates and explained the ultrafast strontium adsorption mechanism of NASICON materials through XPS.
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4

Inglis, Kenneth K., John P. Corley, Pierre Florian, Jordi Cabana, Ryan D. Bayliss, and Frédéric Blanc. "Structure and Sodium Ion Dynamics in Sodium Strontium Silicate Investigated by Multinuclear Solid-State NMR." Chemistry of Materials 28, no. 11 (May 24, 2016): 3850–61. http://dx.doi.org/10.1021/acs.chemmater.6b00941.

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5

Imazato, Satoshi, Toshiyuki Nakatsuka, Haruaki Kitagawa, Jun-Ichi Sasaki, Satoshi Yamaguchi, Shuichi Ito, Hiroki Takeuchi, Ryota Nomura, and Kazuhiko Nakano. "Multiple-Ion Releasing Bioactive Surface Pre-Reacted Glass-Ionomer (S-PRG) Filler: Innovative Technology for Dental Treatment and Care." Journal of Functional Biomaterials 14, no. 4 (April 21, 2023): 236. http://dx.doi.org/10.3390/jfb14040236.

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Surface Pre-Reacted Glass-ionomer (S-PRG) filler, which releases strontium (Sr2+), borate (BO33−), fluoride (F−), sodium (Na+), silicate (SiO32−), and aluminum (Al3+) ions at high concentrations, is a unique glass filler that are utilized in dentistry. Because of its multiple-ion releasing characteristics, S-PRG filler exhibits several bioactivities such as tooth strengthening, acid neutralization, promotion of mineralization, inhibition of bacteria and fungi, inhibition of matrix metalloproteinases, and enhancement of cell activity. Therefore, S-PRG filler per se and S-PRG filler-containing materials have the potential to be beneficial for various dental treatments and care. Those include restorative treatment, caries prevention/management, vital pulp therapy, endodontic treatment, prevention/treatment of periodontal disease, prevention of denture stomatitis, and perforation repair/root end filling. This review summarizes bioactive functions exhibited by S-PRG filler and its possible contribution to oral health.
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6

Tarique, Hera, Raza Shahid, Pragati Singh, Raghvendra Pandey, and Prabhakar Singh. "Investigation of Sodium and Germanium Incorporated Strontium Silicate (Sr3-3xna3xsi3-3yge3yo9-Δ) as an Ionic Conductor." SSRN Electronic Journal, 2022. http://dx.doi.org/10.2139/ssrn.4136083.

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7

Sun, Ruimin, Mingyue Dou, Yuxiang Zhang, Jingyu Chen, Yuhao Chen, Bo Han, Kaisheng Xia, et al. "Substituting Innocent Phosphate with Redox-active Silicate Towards Advanced Polyanion-type Cathode Materials for Sodium-ion Batteries." Nanoscale, 2023. http://dx.doi.org/10.1039/d2nr06602e.

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Polyanion-type phosphate materials with Na-super-ionic conductor structures are promising for next-generation sodium-ion battery cathodes, however, the intrinsically low electroconductivity and limited energy density have restricted their practical applications. In this...
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