Literatura académica sobre el tema "3D macroporous carbon"

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Artículos de revistas sobre el tema "3D macroporous carbon"

1

Lv, Kuilin, Yanchen Fan, Ying Zhu, et al. "Elastic Ag-anchored N-doped graphene/carbon foam for the selective electrochemical reduction of carbon dioxide to ethanol." Journal of Materials Chemistry A 6, no. 12 (2018): 5025–31. http://dx.doi.org/10.1039/c7ta10802h.

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Hu, Xiang, Yangjie Liu, Junxiang Chen, Jingchun Jia, Hongbing Zhan, and Zhenhai Wen. "FeS quantum dots embedded in 3D ordered macroporous carbon nanocomposite for high-performance sodium-ion hybrid capacitors." Journal of Materials Chemistry A 7, no. 3 (2019): 1138–48. http://dx.doi.org/10.1039/c8ta10468a.

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The 3D ordered macroporous structure made of FeS quantum dots homogeneously embedded in a 3D inverse opal-structured carbon matrix was designed for sodium ion capacitors with high energy/power densities.
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3

Fang, Yongjin, Song Lin Zhang, Zhi-Peng Wu, Deyan Luan, and Xiong Wen (David) Lou. "A highly stable lithium metal anode enabled by Ag nanoparticle–embedded nitrogen-doped carbon macroporous fibers." Science Advances 7, no. 21 (2021): eabg3626. http://dx.doi.org/10.1126/sciadv.abg3626.

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Lithium metal has been considered as an ideal anode candidate for future high energy density lithium batteries. Herein, we develop a three-dimensional (3D) hybrid host consisting of Ag nanoparticle–embedded nitrogen-doped carbon macroporous fibers (denoted as Ag@CMFs) with selective nucleation and targeted deposition of Li. The 3D macroporous framework can inhibit the formation of dendritic Li by capturing metallic Li in the matrix as well as reducing local current density, the lithiophilic nitrogen-doped carbons act as homogeneous nucleation sites owing to the small nucleation barrier, and th
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4

Xia, Wei, Michelle A. Hunter, Jiayu Wang, et al. "Highly ordered macroporous dual-element-doped carbon from metal–organic frameworks for catalyzing oxygen reduction." Chemical Science 11, no. 35 (2020): 9584–92. http://dx.doi.org/10.1039/d0sc02518f.

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Multiple heteroatoms-doped carbon with 3D ordered macroporous structures, which showing outstanding catalytic activity for oxygen reduction, was prepared by carbonization of double-solvent-induced MOF/polystyrene sphere accompanied with post-doping.
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5

Zhou, Zuocheng, Qingfeng Yan, Fabing Su, and X. S. Zhao. "Replicating novel carbon nanostructures with 3D macroporous silica template." Journal of Materials Chemistry 15, no. 26 (2005): 2569. http://dx.doi.org/10.1039/b503691g.

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6

Ozden, Sehmus, Tharangattu N. Narayanan, Chandra S. Tiwary, et al. "3D Macroporous Solids from Chemically Cross-linked Carbon Nanotubes." Small 11, no. 6 (2014): 688–93. http://dx.doi.org/10.1002/smll.201402127.

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7

Tonanon, Nattaporn, Adisak Siyasukh, Yunyong Wareenin, et al. "3D interconnected macroporous carbon monoliths prepared by ultrasonic irradiation." Carbon 43, no. 13 (2005): 2808–11. http://dx.doi.org/10.1016/j.carbon.2005.05.026.

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8

Kaneti, Yusuf Valentino, Ni Luh Wulan Septiani, Indra Saptiama, et al. "Self-sacrificial templated synthesis of a three-dimensional hierarchical macroporous honeycomb-like ZnO/ZnCo2O4 hybrid for carbon monoxide sensing." Journal of Materials Chemistry A 7, no. 7 (2019): 3415–25. http://dx.doi.org/10.1039/c8ta11380g.

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9

Wu, Rui, Xiaoju Wan, Jianghai Deng, et al. "NaCl protected synthesis of 3D hierarchical metal-free porous nitrogen-doped carbon catalysts for the oxygen reduction reaction in acidic electrolyte." Chemical Communications 55, no. 61 (2019): 9023–26. http://dx.doi.org/10.1039/c9cc02986a.

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A high-performance 3D hierarchical porous metal-free N-doped carbon catalyst for oxygen reduction reaction in acidic medium was synthesized with ZnO as a mesoporous template and NaCl as both a macroporous template and a structure protective agent.
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10

Fang, Zhiwei, Desiree Fernandez, Nana Wang, Zhongchao Bai, and Guihua Yu. "Mo2C@3D ultrathin macroporous carbon realizing efficient and stable nitrogen fixation." Science China Chemistry 63, no. 11 (2020): 1570–77. http://dx.doi.org/10.1007/s11426-020-9740-8.

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