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<h3>Enhancing CO2 electrolysis performance with vanadiumdoped </h3><p>Enhancing CO 2 electrolysis performance with vanadiumdoped perovskite cathode in solid oxide  According to the XPS analysis of O1s  For direct comparison, both  </p>

Enhancing CO2 electrolysis performance with vanadiumdoped

Enhancing CO 2 electrolysis performance with vanadiumdoped perovskite cathode in solid oxide According to the XPS analysis of O1s For direct comparison, both

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<h3>cient Catalyst with In Situ Exsolved Fe Ni Alloy Nanospheres </h3><p>2 electrolysis, perovskite oxide, in situ exsolution, SOEC 1. INTRODUCTION  for the direct conversion of CO 2 to carbon  Thermogravimetric analysis (TA SDT Q600) were per  </p>

cient Catalyst with In Situ Exsolved Fe Ni Alloy Nanospheres

2 electrolysis, perovskite oxide, in situ exsolution, SOEC 1. INTRODUCTION for the direct conversion of CO 2 to carbon Thermogravimetric analysis (TA SDT Q600) were per

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<h3>Water photolysis at 12.3% efficiency via perovskite </h3><p>In the past several years, perovskite solar cells have emerged as a lowcost experimental alternative to more traditional silicon devices. Luo et al. now show that a pair of perovskite cells connected in series can power the electrochemical breakdown of water into hydrogen and oxygen efficiently (see the Perspective by Hamann). </p>

Water photolysis at 12.3% efficiency via perovskite

In the past several years, perovskite solar cells have emerged as a lowcost experimental alternative to more traditional silicon devices. Luo et al. now show that a pair of perovskite cells connected in series can power the electrochemical breakdown of water into hydrogen and oxygen efficiently (see the Perspective by Hamann).

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<h3>Surface Chemistry of PerovskiteType Electrodes During High </h3><p>Inorganic Analytical Chemistry Catalyst with In Situ Exsolved FeNi Alloy Nanospheres Socketed on an Oxygen Deficient Perovskite for Direct CO 2 Electrolysis. </p>

Surface Chemistry of PerovskiteType Electrodes During High

Inorganic Analytical Chemistry Catalyst with In Situ Exsolved FeNi Alloy Nanospheres Socketed on an Oxygen Deficient Perovskite for Direct CO 2 Electrolysis.

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<h3>Perovskite Chromates Cathode with Exsolved Iron Nanoparticles </h3><p>Perovskite Chromates Cathode with Exsolved Iron Nanoparticles for Direct HighTemperature Steam Electrolysis.  Analytical. Catalysis, Reaction Kinetics, and  </p>

Perovskite Chromates Cathode with Exsolved Iron Nanoparticles

Perovskite Chromates Cathode with Exsolved Iron Nanoparticles for Direct HighTemperature Steam Electrolysis. Analytical. Catalysis, Reaction Kinetics, and

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<h3>Perovskite chromate doped with titanium for direct carbon </h3><p>Perovskite chromate doped with titanium for direct carbon dioxide electrolysis Weitang Yao , a b Tao Duan , a Yuanxin Li , b  Yang b and Kui Xie * a b </p>

Perovskite chromate doped with titanium for direct carbon

Perovskite chromate doped with titanium for direct carbon dioxide electrolysis Weitang Yao , a b Tao Duan , a Yuanxin Li , b Yang b and Kui Xie * a b

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<h3>In situ formation of oxygen vacancy in perovskite Sr0.95Ti0 </h3><p>Recently, perovskite (La 0.75 Sr 0.25) 0.95 Mn 0.5 Cr 0.5 O 3 (LSCM) has been demonstrated to be an efficient ceramic cathode for direct CO 2 electrolysis in the absence of a reducing gas flowing  </p>

In situ formation of oxygen vacancy in perovskite Sr0.95Ti0

Recently, perovskite (La 0.75 Sr 0.25) 0.95 Mn 0.5 Cr 0.5 O 3 (LSCM) has been demonstrated to be an efficient ceramic cathode for direct CO 2 electrolysis in the absence of a reducing gas flowing

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<h3>On the Existence of ASite Deficiency in Perovskites and Its </h3><p>The low range of Asite deficiency in perovskite structures with Ni cations was verified by neutron powder diffraction, transmission electron microscopy, and thermogravimetric analysis. A thermodynamic approach has been utilized, for the first time, to predict the extent of Asite deficiencies within the perovskite structure, introducing simple prediction criteria that could be adopted for designing advanced materials. </p>

On the Existence of ASite Deficiency in Perovskites and Its

The low range of Asite deficiency in perovskite structures with Ni cations was verified by neutron powder diffraction, transmission electron microscopy, and thermogravimetric analysis. A thermodynamic approach has been utilized, for the first time, to predict the extent of Asite deficiencies within the perovskite structure, introducing simple prediction criteria that could be adopted for designing advanced materials.

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<h3>Perovskite chromate doped with titanium for direct carbon </h3><p>Perovskite chromate doped with titanium for direct carbon dioxide electrolysis Weitang Yao , a b Tao Duan , a Yuanxin Li , b  Yang b and Kui Xie * a b </p>

Perovskite chromate doped with titanium for direct carbon

Perovskite chromate doped with titanium for direct carbon dioxide electrolysis Weitang Yao , a b Tao Duan , a Yuanxin Li , b Yang b and Kui Xie * a b

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<h3>A novel fuel electrode enabling direct CO2 electrolysis with </h3><p>Here we report a ceramic SOEC cathode material of perovskitestructured Sr 1.9 Fe 1.5 Mo 0.4 Ni 0.1 O 6 for direct CO 2 electrolysis. By annealing at 800 °C in H 2, homogeneously dispersed nanosized NiFe alloy nanoparticles are exsolved from the Sr 1.9 Fe 1.5 Mo 0.4 Ni 0.1 O 6 perovskite lattice. </p>

A novel fuel electrode enabling direct CO2 electrolysis with

Here we report a ceramic SOEC cathode material of perovskitestructured Sr 1.9 Fe 1.5 Mo 0.4 Ni 0.1 O 6 for direct CO 2 electrolysis. By annealing at 800 °C in H 2, homogeneously dispersed nanosized NiFe alloy nanoparticles are exsolved from the Sr 1.9 Fe 1.5 Mo 0.4 Ni 0.1 O 6 perovskite lattice.

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<h3>In situ formation of oxygen vacancy in perovskite Sr(0.95)Ti </h3><p>In this work, redoxactive Mn or Cr is introduced to the B site of redox stable perovskite Sr(0.95)Ti(0.9)Nb(0.1)O3.00 to create oxygen vacancies in situ after reduction for hightemperature CO2 electrolysis. Combined analysis using Xray diffraction, Xray photoelectron spectroscopy, transmission  </p>

In situ formation of oxygen vacancy in perovskite Sr(0.95)Ti

In this work, redoxactive Mn or Cr is introduced to the B site of redox stable perovskite Sr(0.95)Ti(0.9)Nb(0.1)O3.00 to create oxygen vacancies in situ after reduction for hightemperature CO2 electrolysis. Combined analysis using Xray diffraction, Xray photoelectron spectroscopy, transmission

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<h3>Perovskite Oxyfluoride Electrode Enabling Direct </h3><p>Solid oxide electrolysis  2 electrolysis performance among the reported perovskite  for the design of robust cathodes for direct CO 2 electrolysis in  </p>

Perovskite Oxyfluoride Electrode Enabling Direct

Solid oxide electrolysis 2 electrolysis performance among the reported perovskite for the design of robust cathodes for direct CO 2 electrolysis in

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<h3>Electrolysis: Theory, Types and Applications (Chemistry </h3><p>Applications. Electrolysis: Theory, Types and. Applications. Shing Kuai. AND. Jl MENG. Editors. Nova Science Publishers, Inc.In chemistry and manufacturing, electrolysis is a technique that uses a direct electric current 5 Competing halfreactions in solution electrolysis6 Research trends . </p>

Electrolysis: Theory, Types and Applications (Chemistry

Applications. Electrolysis: Theory, Types and. Applications. Shing Kuai. AND. Jl MENG. Editors. Nova Science Publishers, Inc.In chemistry and manufacturing, electrolysis is a technique that uses a direct electric current 5 Competing halfreactions in solution electrolysis6 Research trends .

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<h3>Supplementary Information materials and techniques cost of </h3><p>1. Basic Assumptions for perovskite module manufacturing 1.1. The perovskite PV manufacturer locates at Toledo, OH. 1.2. The module dimension is 1.2 m x 0.6 m (0.72 m2), which is available in the market.1 1.3. Front glass is 3.2 mm heat strengthened with antireflective coating. Back glass is 3.2 mm tempered. 1.4. </p>

Supplementary Information materials and techniques cost of

1. Basic Assumptions for perovskite module manufacturing 1.1. The perovskite PV manufacturer locates at Toledo, OH. 1.2. The module dimension is 1.2 m x 0.6 m (0.72 m2), which is available in the market.1 1.3. Front glass is 3.2 mm heat strengthened with antireflective coating. Back glass is 3.2 mm tempered. 1.4.

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<h3>Perovskite chromate doped with titanium for direct carbon </h3><p>Perovskite chromate doped with titanium for direct carbon dioxide electrolysis Unfortunately, a major setback of insufficient electrocatalytic activity limits the efficient carbon dioxide electrolysis. </p>

Perovskite chromate doped with titanium for direct carbon

Perovskite chromate doped with titanium for direct carbon dioxide electrolysis Unfortunately, a major setback of insufficient electrocatalytic activity limits the efficient carbon dioxide electrolysis.

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<h3>Perovskite Chromate Doped with Titanium for Direct Carbon </h3><p>Perovskite Chromate Doped with Titanium for Direct Carbon Dioxide Electrolysis  analysis indicates that the Srdoping favor the change of the valence states of the Fe3+ to Fe4+.  Socketed on  </p>

Perovskite Chromate Doped with Titanium for Direct Carbon

Perovskite Chromate Doped with Titanium for Direct Carbon Dioxide Electrolysis analysis indicates that the Srdoping favor the change of the valence states of the Fe3+ to Fe4+. Socketed on

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<h3>InSitu Exsolved Alloy Nanoparticles on Perovskite for Direct </h3><p>InSitu Exsolved Alloy Nanoparticles on Perovskite for Direct CO 2 Reduction  conversion of CO 2 to CO in a high temperature solid oxide electrolysis cell.  thermogravimetric analysis (TGA  </p>

InSitu Exsolved Alloy Nanoparticles on Perovskite for Direct

InSitu Exsolved Alloy Nanoparticles on Perovskite for Direct CO 2 Reduction conversion of CO 2 to CO in a high temperature solid oxide electrolysis cell. thermogravimetric analysis (TGA

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<h3>Highly Efficient CO2 Electrolysis on Cathodes with Exsolved </h3><p>Physical, Inorganic, and Analytical.  high direct CO 2 electrolysis performance  on an Oxygen Deficient Perovskite for Direct CO 2 Electrolysis. </p>

Highly Efficient CO2 Electrolysis on Cathodes with Exsolved

Physical, Inorganic, and Analytical. high direct CO 2 electrolysis performance on an Oxygen Deficient Perovskite for Direct CO 2 Electrolysis.

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