TY - JOUR
T1 - On the Topotactic Phase Transition Achieving Superconducting Infinite-Layer Nickelates
AU - Li, Yan
AU - Liu, Changjiang
AU - Zheng, Hong
AU - Jiang, Jidong Samuel
AU - Zhu, Zihua
AU - Yan, Xi
AU - Cao, Hui
AU - Narayanachari, K. V.L.V.
AU - Paudel, Binod
AU - Koirala, Krishna Prasad
AU - Zhang, Zhan
AU - Fisher, Brandon
AU - Wang, Huanhua
AU - Karapetrova, Evguenia
AU - Sun, Chengjun
AU - Kelly, Shelly
AU - Phelan, Daniel
AU - Du, Yingge
AU - Buchholz, Bruce
AU - Mitchell, J. F.
AU - Bhattacharya, Anand
AU - Fong, Dillon D.
AU - Zhou, Hua
N1 - Publisher Copyright:
© 2024 The Author(s). Advanced Materials published by Wiley-VCH GmbH.
PY - 2024/10/2
Y1 - 2024/10/2
N2 - Topotactic reduction is critical to a wealth of phase transitions of current interest, including synthesis of the superconducting nickelate Nd0.8Sr0.2NiO2, reduced from the initial Nd0.8Sr0.2NiO3/SrTiO3 heterostructure. Due to the highly sensitive and often damaging nature of the topotactic reduction, however, only a handful of research groups have been able to reproduce the superconductivity results. A series of in situ synchrotron-based investigations reveal that this is due to the necessary formation of an initial, ultrathin layer at the Nd0.8Sr0.2NiO3 surface that helps to mediate the introduction of hydrogen into the film such that apical oxygens are first removed from the Nd0.8Sr0.2NiO3 / SrTiO3 (001) interface and delivered into the reducing environment. This allows the square-planar / perovskite interface to stabilize and propagate from the bottom to the top of the film without the formation of interphase defects. Importantly, neither geometric rotations in the square planar structure nor significant incorporation of hydrogen within the films is detected, obviating its need for superconductivity. These findings unveil the structural basis underlying the transformation pathway and provide important guidance on achieving the superconducting phase in reduced nickelate systems.
AB - Topotactic reduction is critical to a wealth of phase transitions of current interest, including synthesis of the superconducting nickelate Nd0.8Sr0.2NiO2, reduced from the initial Nd0.8Sr0.2NiO3/SrTiO3 heterostructure. Due to the highly sensitive and often damaging nature of the topotactic reduction, however, only a handful of research groups have been able to reproduce the superconductivity results. A series of in situ synchrotron-based investigations reveal that this is due to the necessary formation of an initial, ultrathin layer at the Nd0.8Sr0.2NiO3 surface that helps to mediate the introduction of hydrogen into the film such that apical oxygens are first removed from the Nd0.8Sr0.2NiO3 / SrTiO3 (001) interface and delivered into the reducing environment. This allows the square-planar / perovskite interface to stabilize and propagate from the bottom to the top of the film without the formation of interphase defects. Importantly, neither geometric rotations in the square planar structure nor significant incorporation of hydrogen within the films is detected, obviating its need for superconductivity. These findings unveil the structural basis underlying the transformation pathway and provide important guidance on achieving the superconducting phase in reduced nickelate systems.
KW - in situ X-ray characterization
KW - infinite-layer nickelates
KW - oxygen octahedral rotation
KW - time-of-flight secondary ion mass spectrometry
KW - topotactic phase transition
UR - https://www.scopus.com/pages/publications/85202749592
U2 - 10.1002/adma.202402484
DO - 10.1002/adma.202402484
M3 - Article
C2 - 39219216
AN - SCOPUS:85202749592
SN - 0935-9648
VL - 36
JO - Advanced Materials
JF - Advanced Materials
IS - 40
M1 - 2402484
ER -