Introduction to Porous Nanostructure
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Porous Nanostructure sentence examples within metal organic framework
Herein, we demonstrate the synthesis of a highly porous nanostructured Ni-Co@C catalyst for efficient electrooxidation of urea, via the calcination of Co-doped Ni-based metal-organic framework (Ni/Co-MOF).
Herein, we demonstrate the synthesis of a highly porous nanostructured Ni-Co@C catalyst for efficient electrooxidation of urea, via the calcination of Co-doped Ni-based metal-organic framework (Ni/Co-MOF).
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To accomplish this CO2 utilization issue, functional organic materials like porous organic polymers (POPs), covalent organic frameworks (COFs) as well as organic-inorganic hybrid materials like metal-organic frameworks (MOFs), having characteristics of large surface area, high thermal stability and tunability in the porous nanostructures play significant role in designing the suitable catalyst for the CO2 hydrogenation reactions.
To accomplish this CO2 utilization issue, functional organic materials like porous organic polymers (POPs), covalent organic frameworks (COFs) as well as organic-inorganic hybrid materials like metal-organic frameworks (MOFs), having characteristics of large surface area, high thermal stability and tunability in the porous nanostructures play significant role in designing the suitable catalyst for the CO2 hydrogenation reactions.
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Porous Nanostructure sentence examples within h g 1
When used as anode materials for sodium-ion batteries, the 2D porous nanostructures and abundant N/O doping of CCNs-600 (carbonized at 600 °C) enable a high reversible capacity of 360 mA h g-1 at 50 mA g-1, a good rate capability of 102 mA h g-1 at 10 A g-1, and an excellent cycling stability of 140 mA h g-1 after 10 000 cycles at a high density of 5 A g-1.
When used as anode materials for sodium-ion batteries, the 2D porous nanostructures and abundant N/O doping of CCNs-600 (carbonized at 600 °C) enable a high reversible capacity of 360 mA h g-1 at 50 mA g-1, a good rate capability of 102 mA h g-1 at 10 A g-1, and an excellent cycling stability of 140 mA h g-1 after 10 000 cycles at a high density of 5 A g-1.
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Porous Nanostructure sentence examples within Hierarchical Porous Nanostructure
Due to the synergistic effect between Pt NCs and abundant atomic M(II) defects, along with hierarchical porous nanostructures, the Pt/NixFe LDHs catalysts exhibit superior trifunctional electrocatalytic activity and durability toward the HER/OER/ORR.
Due to the synergistic effect between Pt NCs and abundant atomic M(II) defects, along with hierarchical porous nanostructures, the Pt/NixFe LDHs catalysts exhibit superior trifunctional electrocatalytic activity and durability toward the HER/OER/ORR.
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Herein, we report a facile methodology for fabricating the hierarchical porous nanostructures riveted with ultrafine Ru nanoclusters as high-performance nanoreactors for overall water splitting from MOF precursors.
Herein, we report a facile methodology for fabricating the hierarchical porous nanostructures riveted with ultrafine Ru nanoclusters as high-performance nanoreactors for overall water splitting from MOF precursors.
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Porous Nanostructure sentence examples within Hierarchically Porous Nanostructure
The pyrolyzed CoMo-MI-T series exhibits a hierarchically porous nanostructure, high Co3Mo3C/N content, suitable N-doping, graphitic carbon layers as well as well-preserved flower-shaped morphology, which shows an excellent OER performance.
The pyrolyzed CoMo-MI-T series exhibits a hierarchically porous nanostructure, high Co3Mo3C/N content, suitable N-doping, graphitic carbon layers as well as well-preserved flower-shaped morphology, which shows an excellent OER performance.
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The rational design and construction of hierarchically porous nanostructure for oxygen reduction reaction (ORR) electrocatalysts is crucial to facilitate the exposure of accessible active sites and promote the mass/electron transfer under the gas-solid-liquid triple-phase condition.
The rational design and construction of hierarchically porous nanostructure for oxygen reduction reaction (ORR) electrocatalysts is crucial to facilitate the exposure of accessible active sites and promote the mass/electron transfer under the gas-solid-liquid triple-phase condition.
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Porous Nanostructure sentence examples within Highly Porous Nanostructure
The randomly arranged, interconnected, nanoplate-like morphology of WO3 was destroyed owing to the presence of rGO nanosheets and converted into a highly porous nanostructure.
The randomly arranged, interconnected, nanoplate-like morphology of WO3 was destroyed owing to the presence of rGO nanosheets and converted into a highly porous nanostructure.
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Herein, we demonstrate the synthesis of a highly porous nanostructured Ni-Co@C catalyst for efficient electrooxidation of urea, via the calcination of Co-doped Ni-based metal-organic framework (Ni/Co-MOF).
Herein, we demonstrate the synthesis of a highly porous nanostructured Ni-Co@C catalyst for efficient electrooxidation of urea, via the calcination of Co-doped Ni-based metal-organic framework (Ni/Co-MOF).
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Porous Nanostructure sentence examples within 3d Porous Nanostructure
The enhanced reversible capacity and cycling stability is ascribed to the reduced graphene oxide and its unique 3D porous nanostructure.
The enhanced reversible capacity and cycling stability is ascribed to the reduced graphene oxide and its unique 3D porous nanostructure.
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The entire surface of powders, in turn, is covered with the low-surface-energy liquid to maintain the porosity, creating a 3D porous nanostructure, resulting in a water contact angle over 160°.
The entire surface of powders, in turn, is covered with the low-surface-energy liquid to maintain the porosity, creating a 3D porous nanostructure, resulting in a water contact angle over 160°.
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Porous Nanostructure sentence examples within Exhibit Porous Nanostructure
All layers deposited with Cr+ irradiation exhibit porous nanostructure, high oxygen content, and poor mechanical properties.
All layers deposited with Cr+ irradiation exhibit porous nanostructure, high oxygen content, and poor mechanical properties.
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Owing to the incorporated transition metals, the as-prepared M-WP nanomaterials exhibit porous nanostructures, abundant active sites and reduced charge transfer resistances.
Owing to the incorporated transition metals, the as-prepared M-WP nanomaterials exhibit porous nanostructures, abundant active sites and reduced charge transfer resistances.
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Porous Nanostructure sentence examples within Unique Porous Nanostructure
Considering the photocatalytic performance of CDs, ZnO, and the unique porous nanostructure and stability of ZIF-8, we prepared ZnCDs/ZnO@ZIF-8 zeolite composites.
Considering the photocatalytic performance of CDs, ZnO, and the unique porous nanostructure and stability of ZIF-8, we prepared ZnCDs/ZnO@ZIF-8 zeolite composites.
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The huge load of CoS2 on carbon cloth,their unique porous nanostructures equiped CoS2 nanomaterials with excellent electrocatalytic properties.
The huge load of CoS2 on carbon cloth,their unique porous nanostructures equiped CoS2 nanomaterials with excellent electrocatalytic properties.
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10.3390/nano11030730
The methodology developed in this work acts as a tool for the study of drug delivery from porous nanostructures.
The methodology developed in this work acts as a tool for the study of drug delivery from porous nanostructures.
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10.1016/j.ijhydene.2021.08.011
Many mesoporous nanostructures provide enough buffer space and promote the ions' and electrons’ transmission rate.
Many mesoporous nanostructures provide enough buffer space and promote the ions' and electrons’ transmission rate.
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10.1007/s12274-021-3375-2
Despite the extensive application of porous nanostructures as oxygen electrocatalysts, it is challenging to synthesize single-metal state materials with porous structures, especially the ultrasmall ones due to the uniform diffusion of the same metal.
Despite the extensive application of porous nanostructures as oxygen electrocatalysts, it is challenging to synthesize single-metal state materials with porous structures, especially the ultrasmall ones due to the uniform diffusion of the same metal.
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10.1039/d1ma00363a
A binder-free free-standing sulfide electrode was synthesized and fabricated with a three-dimensional (3D) porous nanostructure.
A binder-free free-standing sulfide electrode was synthesized and fabricated with a three-dimensional (3D) porous nanostructure.
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10.1016/J.APSUSC.2021.150529
When 1,3,5-Tris(4-carboxyphenylethynyl) benzene (H3BTE) or 1,3,5-tris(10-carboxydecyloxy)-benzene (TCDB) instead of A10 was adopted, porous nanostructure with the molar ratio of 1:1 was in situ prepared in BTIB/H3BTE and BTIB/TCDB system respectively, which indicated the regulatory effect of the number of aromatic acids’ carboxyl groups on the co-assemblies of BTIB and aromatic acids.
When 1,3,5-Tris(4-carboxyphenylethynyl) benzene (H3BTE) or 1,3,5-tris(10-carboxydecyloxy)-benzene (TCDB) instead of A10 was adopted, porous nanostructure with the molar ratio of 1:1 was in situ prepared in BTIB/H3BTE and BTIB/TCDB system respectively, which indicated the regulatory effect of the number of aromatic acids’ carboxyl groups on the co-assemblies of BTIB and aromatic acids.
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10.1016/j.jcis.2021.09.171
An efficient oxygen bifunctional catalyst Pt-Ru-Ir with ordered mesoporous nanostructures (OMNs) was successfully synthesized by chemical reduction using KIT-6 mesoporous silica as a template.
An efficient oxygen bifunctional catalyst Pt-Ru-Ir with ordered mesoporous nanostructures (OMNs) was successfully synthesized by chemical reduction using KIT-6 mesoporous silica as a template.
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10.1016/J.CEJ.2021.129700
Aerogels, novel materials, have three-dimensional (3D) porous nanostructure.
Aerogels, novel materials, have three-dimensional (3D) porous nanostructure.
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10.1038/s41598-021-95621-3
The results show that the use of porous nanostructures in TENG due to their high surface-to-volume, and that the process of water adsorption on the pore leads to better performance than the flat surface in humid environments.
The results show that the use of porous nanostructures in TENG due to their high surface-to-volume, and that the process of water adsorption on the pore leads to better performance than the flat surface in humid environments.
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10.21294/1814-4861-2021-20-4-73-83
Such nanoparticles interact with water at 60 °Ϲ, resulting in formation of porous nanostructures.
Such nanoparticles interact with water at 60 °Ϲ, resulting in formation of porous nanostructures.
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10.1007/s11581-021-03957-7
The mesoporous nanostructures of cobalt-doped (Co-doped) manganese oxides (MnOx) with controllable compositions are successfully synthesized by a facile inverse micelle sol-gel method.
The mesoporous nanostructures of cobalt-doped (Co-doped) manganese oxides (MnOx) with controllable compositions are successfully synthesized by a facile inverse micelle sol-gel method.
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10.1088/2040-8986/abeaec
There are now many promising manufacturing techniques for these porous nanostructures, such as AR or wavelength filtering coatings for photovoltaics.
There are now many promising manufacturing techniques for these porous nanostructures, such as AR or wavelength filtering coatings for photovoltaics.
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10.1016/J.JIEC.2021.01.005
The resulting Pd@N-CeO2 CSNFs offer small particle sizes with high Brunauer–Emmett–Teller (BET) surface area and porous nanostructures.
The resulting Pd@N-CeO2 CSNFs offer small particle sizes with high Brunauer–Emmett–Teller (BET) surface area and porous nanostructures.
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10.3390/nano11092347
Moreover, the obtained electrocatalyst possessed a porous nanostructure, had abundant exposed active sites and improved the mass transport during the electrocatalytic process.
Moreover, the obtained electrocatalyst possessed a porous nanostructure, had abundant exposed active sites and improved the mass transport during the electrocatalytic process.
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10.1016/j.jcis.2021.08.192
The unique mesoporous nanostructure of V3S4 can not only accelerate the migration of ions/electrons, but also alleviate the volume expansion during the lithium ion insertion/extraction process.
The unique mesoporous nanostructure of V3S4 can not only accelerate the migration of ions/electrons, but also alleviate the volume expansion during the lithium ion insertion/extraction process.
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10.1039/D0NA00912A
The bimetallic Co–Ir 2D nanoframes consist of interconnected Co–Ir alloy domains within an unsupported, carbon-free, porous nanostructure that allows three-dimensional molecular access to the catalytically active surface sites.
The bimetallic Co–Ir 2D nanoframes consist of interconnected Co–Ir alloy domains within an unsupported, carbon-free, porous nanostructure that allows three-dimensional molecular access to the catalytically active surface sites.
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10.1039/d1ta02861h
A reliable ageing chronology was achieved on several length scales for an ultraporous nanostructured silica via 3D quantification.
A reliable ageing chronology was achieved on several length scales for an ultraporous nanostructured silica via 3D quantification.
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10.1016/j.matpr.2021.06.195
SEM studies indicate the formation of porous nanostructured materials.
SEM studies indicate the formation of porous nanostructured materials.
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10.1016/j.nantod.2021.101146
While outlining their individual synthetic mechanisms after a brief introduction of the structures and properties of porous nanomaterials, the current review highlighted the representative applications of three main categories of porous nanostructures (organic, inorganic, and organic-inorganic nanomaterials).
While outlining their individual synthetic mechanisms after a brief introduction of the structures and properties of porous nanomaterials, the current review highlighted the representative applications of three main categories of porous nanostructures (organic, inorganic, and organic-inorganic nanomaterials).
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10.1016/J.IJLEO.2021.166433
The photocatalytic measurement shows a good catalytic behavior of the NiO mesoporous nanostructure with a 77.
The photocatalytic measurement shows a good catalytic behavior of the NiO mesoporous nanostructure with a 77.
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10.1088/1361-6528/ac297e
The excellent electrocatalytic performance of Mesh-CrFe-CoP NSs is attributed to the co-doping and porous nanostructure.
The excellent electrocatalytic performance of Mesh-CrFe-CoP NSs is attributed to the co-doping and porous nanostructure.
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10.1021/acs.langmuir.1c00472
Furthermore, the contact time of drop impacts on flat surfaces is positively correlated with the impact velocity due to penetration of the liquid into the porous nanostructure.
Furthermore, the contact time of drop impacts on flat surfaces is positively correlated with the impact velocity due to penetration of the liquid into the porous nanostructure.
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10.1007/s10853-021-05942-x
These hollow particles supersede the response characteristics of solid or even the porous nanostructures, which are mostly used till date.
These hollow particles supersede the response characteristics of solid or even the porous nanostructures, which are mostly used till date.
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10.1016/J.MATCHEMPHYS.2021.124373
Well-controlled hollow-porous nanostructures can provide enhanced charge storage capacity owing to the rapid diffusion of electrolyte ions into their interior.
Well-controlled hollow-porous nanostructures can provide enhanced charge storage capacity owing to the rapid diffusion of electrolyte ions into their interior.
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10.21577/1984-6835.20210027
Later, the Al film is anodized and converted into a porous nanostructured oxide film.
Later, the Al film is anodized and converted into a porous nanostructured oxide film.
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10.3390/nano11092193
Self-supported AuCu presented a branched, porous nanostructure.
Self-supported AuCu presented a branched, porous nanostructure.
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10.3233/BME-201118
METHODS
In this work, we present the development and the physical properties study of biocompatible hybrid mesoporous nanostructured scaffolds with a chemically versatile surface and biosimilar architecture.
METHODS
In this work, we present the development and the physical properties study of biocompatible hybrid mesoporous nanostructured scaffolds with a chemically versatile surface and biosimilar architecture.
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10.1021/acs.langmuir.1c01810
Upon transferring the spreading film onto the mica surface, porous nanostructures are observed.
Upon transferring the spreading film onto the mica surface, porous nanostructures are observed.
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10.1016/J.CJCHE.2021.05.021
To explore a mesoporous nanostructure with excellent water dispersibility and high drug-loading capacity, a novel nanorattle-structured Fe3O4@SiO2@NaYF4:Yb,Er magnetic upconversion nanorattle (MUCNR) was successfully designed by using Fe3O4 as core and NaYF4:Yb,Er nanocrystals as shell.
To explore a mesoporous nanostructure with excellent water dispersibility and high drug-loading capacity, a novel nanorattle-structured Fe3O4@SiO2@NaYF4:Yb,Er magnetic upconversion nanorattle (MUCNR) was successfully designed by using Fe3O4 as core and NaYF4:Yb,Er nanocrystals as shell.
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10.1016/J.MEDENGPHY.2021.04.007
Among the device's technical specifications, a key feature is a cryo-collector mandrel, capable of collecting fibers in sub-zero temperatures, which can induce ultra-porous nanostructures, wider pores, and subsequent in-depth penetration of cells.
Among the device's technical specifications, a key feature is a cryo-collector mandrel, capable of collecting fibers in sub-zero temperatures, which can induce ultra-porous nanostructures, wider pores, and subsequent in-depth penetration of cells.
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10.1016/J.ELECTACTA.2021.139148
Mesoporous nanostructures of Pt alloy with Ru-Ir as trimetallic electrocatalyst exhibits significant performance for direct methanol fuel cell (DMFC).
Mesoporous nanostructures of Pt alloy with Ru-Ir as trimetallic electrocatalyst exhibits significant performance for direct methanol fuel cell (DMFC).
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10.1016/j.matchemphys.2020.124158
TiO2 hollow mesoporous nanostructures were prepared via a confined interfacial monomicelle assembly approach, and their photocatalytic performance is discussed using phenol as the degradation target.
TiO2 hollow mesoporous nanostructures were prepared via a confined interfacial monomicelle assembly approach, and their photocatalytic performance is discussed using phenol as the degradation target.
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10.1016/j.ijhydene.2021.06.167
Meanwhile, the uniquely and hierarchically mesoporous nanostructure of SDMC provides abundant pathways for mass transport in the electrooxidation reaction.
Meanwhile, the uniquely and hierarchically mesoporous nanostructure of SDMC provides abundant pathways for mass transport in the electrooxidation reaction.
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10.1016/J.CARBON.2021.01.125
Ordered mesoporous carbon (OMC) has been regarded as a promising carbonaceous material for microwave absorption (MA) owing to its high specific surface area, sufficient ordered mesoporous nanostructures and easy decoration.
Ordered mesoporous carbon (OMC) has been regarded as a promising carbonaceous material for microwave absorption (MA) owing to its high specific surface area, sufficient ordered mesoporous nanostructures and easy decoration.
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10.1002/anie.202016667
Imine-based covalent organic frameworks (COFs) are a widely studied class of functional, crystalline, and porous nanostructures which combine a relatively facile crystallization with tuneable compositions and porosities.
Imine-based covalent organic frameworks (COFs) are a widely studied class of functional, crystalline, and porous nanostructures which combine a relatively facile crystallization with tuneable compositions and porosities.
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10.3365/KJMM.2021.59.2.135
But by changing the working pressure, various morphologies of porous nanostructures can be obtained.
But by changing the working pressure, various morphologies of porous nanostructures can be obtained.
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10.1039/D0EN01182G
The porous nanostructures produced due to Ba2+-assisted molecular gelation of TA possibly contributed to the strong adhesion.
The porous nanostructures produced due to Ba2+-assisted molecular gelation of TA possibly contributed to the strong adhesion.
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10.1016/j.jhazmat.2021.125992
The use of an active organic linker, extracted from waste residue (plastic), for the synthesis of porous nanostructured materials would be beneficial in the fabrication of electrodes for MFC.
The use of an active organic linker, extracted from waste residue (plastic), for the synthesis of porous nanostructured materials would be beneficial in the fabrication of electrodes for MFC.
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10.1007/s00604-021-04843-9
A porous nanostructured covalent-organic framework (COF) has been prepared via condensation polymerization between the two building blocks of melem and hexaketocyclohexane octahydrate (represented as M-HO-COF).
A porous nanostructured covalent-organic framework (COF) has been prepared via condensation polymerization between the two building blocks of melem and hexaketocyclohexane octahydrate (represented as M-HO-COF).
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10.1007/s11664-021-08773-3
It has porous nanostructure, which can effectively shorten the distance of lithium ion transmission, thus achieving excellent rate performance, and can also reduce the volume expansion in the charging and discharging process, thus reducing the attenuation of capacity.
It has porous nanostructure, which can effectively shorten the distance of lithium ion transmission, thus achieving excellent rate performance, and can also reduce the volume expansion in the charging and discharging process, thus reducing the attenuation of capacity.
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10.1007/s10853-021-05917-y
The low- temperature plasma treatment created mesh-like porous nanostructure on the surface of pristine-W with change in crystalline orientation to (200), while the DPF-based deposition resulted in a nanocrystal (30–50 nm) decorated surface with enhanced (200) orientation.
The low- temperature plasma treatment created mesh-like porous nanostructure on the surface of pristine-W with change in crystalline orientation to (200), while the DPF-based deposition resulted in a nanocrystal (30–50 nm) decorated surface with enhanced (200) orientation.
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10.4028/www.scientific.net/MSF.1038.51
Features of creation of porous nanostructured oxides of transition materials on an example of niobium are considered.
Features of creation of porous nanostructured oxides of transition materials on an example of niobium are considered.
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10.1016/J.JEURCERAMSOC.2021.02.007
Here we investigate the use of atomic layer deposition (ALD) as a potential technique to precisely introduce aluminum oxide as dopant or second phase into zirconia 3D macroporous nanostructures.
Here we investigate the use of atomic layer deposition (ALD) as a potential technique to precisely introduce aluminum oxide as dopant or second phase into zirconia 3D macroporous nanostructures.
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10.1016/J.ELECTACTA.2021.138865
The material with porous nanostructures has attracted great interest because of more active sites for the faradaic reactions which facilitate the utilization of the full capacity of the active materials.
The material with porous nanostructures has attracted great interest because of more active sites for the faradaic reactions which facilitate the utilization of the full capacity of the active materials.
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10.1016/j.jcis.2021.01.038
HYPOTHESIS
The formation of porous nanostructures on surfaces and the control of their size and shape is fundamental for various applications.
HYPOTHESIS
The formation of porous nanostructures on surfaces and the control of their size and shape is fundamental for various applications.
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10.1016/j.jpowsour.2020.229110
In this work, LiTi2(PO4)3@C/CNTs (LTP@C/CNTs) with three-dimensional mesoporous nanostructure was investigated in both aqueous lithium-ion batteries (ALIBs) and aqueous sodium-ion battery (ASIBs).
In this work, LiTi2(PO4)3@C/CNTs (LTP@C/CNTs) with three-dimensional mesoporous nanostructure was investigated in both aqueous lithium-ion batteries (ALIBs) and aqueous sodium-ion battery (ASIBs).
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