TY - JOUR
T1 - Effect of superconductivity by Nb and V substitution in kagome CaPd5
AU - Li, Dan
AU - Wang, Zhengxuan
AU - Zhang, Chuanguang
AU - Ma, Chunlan
AU - Gong, Shijing
AU - Zhao, Chuanxi
AU - Zhang, Shuaikang
AU - Wang, Tianxing
AU - Dong, Xiao
AU - Liu, Wuming
AU - An, Yipeng
N1 - Publisher Copyright:
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PY - 2025/12/1
Y1 - 2025/12/1
N2 - Materials featuring kagome lattices have attracted significant research interest due to their unique geometric frustration, which gives rise to rich physical phenomena such as non-trivial topology, spin fluctuations, and superconductivity. In this work, using CaPd5 as the prototype structure, we discover and systematically investigate a new class of kagome superconductors, CaMx Pd5−x (M=Nb and V) alloys. First-principles calculations confirm that these compounds are non-magnetic metals, among which four are dynamically stable: CaNb5, CaV5, CaNb2Pd3, and CaV2Pd3. CaNb5 is identified as a strong electron–phonon coupling (EPC) superconductor with the highest superconducting transition temperature (T c) of 10.1 K, which can be further increased to 12.8 K under external pressure. In contrast, CaV5, CaNb2Pd3, and CaV2Pd3 exhibit weaker EPC and correspondingly lower T c values. Furthermore, by applying the method of symmetry indicators, we systematically classify the topological and nodal characteristics of CaNb5, providing valuable insights for determining its superconducting pairing symmetry. Our findings demonstrate that Nb and V substitution in kagome CaPd5 provides an effective route for designing a new type of kagome superconductor with relatively high T c. This study also offers new perspectives on topological superconductivity in kagome systems and establishes a useful guideline for discovering other superconducting materials with unique properties.
AB - Materials featuring kagome lattices have attracted significant research interest due to their unique geometric frustration, which gives rise to rich physical phenomena such as non-trivial topology, spin fluctuations, and superconductivity. In this work, using CaPd5 as the prototype structure, we discover and systematically investigate a new class of kagome superconductors, CaMx Pd5−x (M=Nb and V) alloys. First-principles calculations confirm that these compounds are non-magnetic metals, among which four are dynamically stable: CaNb5, CaV5, CaNb2Pd3, and CaV2Pd3. CaNb5 is identified as a strong electron–phonon coupling (EPC) superconductor with the highest superconducting transition temperature (T c) of 10.1 K, which can be further increased to 12.8 K under external pressure. In contrast, CaV5, CaNb2Pd3, and CaV2Pd3 exhibit weaker EPC and correspondingly lower T c values. Furthermore, by applying the method of symmetry indicators, we systematically classify the topological and nodal characteristics of CaNb5, providing valuable insights for determining its superconducting pairing symmetry. Our findings demonstrate that Nb and V substitution in kagome CaPd5 provides an effective route for designing a new type of kagome superconductor with relatively high T c. This study also offers new perspectives on topological superconductivity in kagome systems and establishes a useful guideline for discovering other superconducting materials with unique properties.
KW - density functional theory for superconductors
KW - electron–phonon coupling
KW - kagome superconductors
KW - quantum regulation
KW - superconductivity
UR - https://www.scopus.com/pages/publications/105033860443
U2 - 10.1088/1361-6668/ae2961
DO - 10.1088/1361-6668/ae2961
M3 - 文章
AN - SCOPUS:105033860443
SN - 0953-2048
VL - 38
JO - Superconductor Science and Technology
JF - Superconductor Science and Technology
IS - 12
M1 - 125014
ER -