Wykaz publikacji wybranego autora

Konrad Świerczek, prof. dr hab. inż.

profesor zwyczajny

Wydział Energetyki i Paliw
WEiP-kew, Katedra Energetyki Wodorowej


  • 2018

    [dyscyplina 1] dziedzina nauk inżynieryjno-technicznych / inżynieria materiałowa

    [dyscyplina 2] dziedzina nauk inżynieryjno-technicznych / inżynieria środowiska, górnictwo i energetyka (25%)


[poprzednia klasyfikacja] obszar nauk technicznych / dziedzina nauk technicznych / energetyka


Identyfikatory Autora Informacje o Autorze w systemach zewnętrznych

ORCID: 0000-0003-4519-389X orcid iD

ResearcherID: S-7666-2016

Scopus: 6603619667

PBN: 5e70922c878c28a047391285

OPI Nauka Polska

System Informacyjny AGH (SkOs)




1
  • A review on the critical challenges and progress of $SiO_{x}$-based anodes for lithium-ion batteries
2
  • Application of Cu-rich perovskites for solid oxide cells operating at lowered temperatures
3
4
  • Catalytic performance and sulfur dioxide resistance of one-pot synthesized Fe-MCM-22 in selective catalytic reduction of nitrogen oxides with ammonia ($NH_3-SCR$)—the effect of iron content
5
  • Co-free triple perovskite $La_{1.5}Ba_{1.5}Cu_{3}O_{7±\delta}$ as a promising air electrode material for solid oxide fuel cells
6
7
  • Designing $REBa_{0.5}Sr_{0.5}CoCuO_{5+\delta}$ (RE: Selected Lanthanides, Y) perovskites for the anode-supported solid oxide fuel cells
8
  • Enhanced performance and durability of lanthanum strontium cobalt ferrite by \emph{in-situ} solvothermal modification
9
10
  • Hexagonal rare-earth manganites — from materials development to practical application of oxygen production in temperature swing proces
11
  • High-entropy approach to double perovskite cathode materials for solid oxide fuel cells: Is multicomponent occupancy in $(La,Pr,Nd,Sm,Gd)BaCo_2O_{5+\delta}$ affecting physicochemical and electrocatalytic properties?
12
  • High-entropy $Sn_{0.8}(Co_{0.2}Mg_{0.2}Mn_{0.2}Ni_{0.2}Zn_{0.2})_{2.2}O_{4}$ conversion-alloying anode material for Li-ion cells: altered lithium storage mechanism, activation of Mg, and origins of the improved cycling stability
13
  • Increasing functionality while maintaining electrochemical performance - high entropy-based air-electrodes for intermediate- and low-temperature solid oxide fuel cells
14
15
16
  • Novel Cu-based perovskites for solid oxide cells
17
  • Origins of excellent cycling stability in the Sn-rich spinel-structured high entropy oxide anode materials for Li-Ion cells
18
  • Oxygen electrodes for solid oxide cells based on Cu-rich perovskite-type oxides
19
  • Surface engineering with ammonium niobium oxalate: a multifunctional strategy to enhance electrochemical performance and thermal stability of $Ni-rich$ cathode materials at 4.5V cutoff potential
20
  • Synthesis and properties of the gallium-containing ruddlesden-popper oxides with high-entropy B-site arrangement
21
  • Tungsten doped $Sr_{2}Fe_{2-x}W_{x}O_{6-\delta}$ electrode materials with in situ exsolved nanoparticles for significantly boosting the performance of symmetrical SOFCs