Using real-time spectroscopic ellipsometry, we directly observed a reversible lattice and electronic structure evolution in SrCoOx (x = 2.5-3) epitaxial thin films. Drastically different electronic ground states, which are extremely susceptible to the oxygen content x, are found in the two topotactic phases: i.e., the brownmillerite SrCoO2.5 and the perovskite SrCoO3. First-principles calculations confirmed substantial differences in the electronic structure, including a metal-insulator transition, which originate from the modification in the Co valence states and crystallographic structures. More interestingly, the two phases can be reversibly controlled by changing the ambient pressure at greatly reduced temperatures. Our finding provides...
Scanning transmission electron microscopy (STEM) is a powerful tool that continues to advance our un...
The vacancy distribution of oxygen and its dynamics directly affect the functional response of compl...
An often-overlooked property of transition metal oxide thin films is their microscopic surface struc...
Topotactic phase transformation enables structural transition without losing the crystalline symmetr...
Transition metal oxides are a big research topic, because they offer a wide range of possible applic...
SrCoO3-δ (SCO) has been drawing large attention due to its intriguing topotactic phase transiti...
Topotactic transitions, i.e. reversible crystallographic varies as a result of the controllable stoi...
Transition metal perovskite oxides are promising electrocatalysts for the oxygen reduction reaction ...
Transition metal perovskite oxides are promising electrocatalysts for the oxygen reduction reaction ...
Reversible topotactic transitions between oxygen-vacancy-ordered structures in transition-metal oxid...
Defect engineering has brought about a unique level of control for Si-based semiconductors, leading ...
Strontium cobaltite (SrCoO3−) exists in two topotactic phases, depending on the oxygen content. SrCo...
Oxygen defects and their atomic arrangements play a significant role in the physical properties of m...
Oxide materials facilitating high-ion mobility and fast-ion transport are highly sought after for ap...
Because of its multivalent Co states and high oxygen mobility SrCoO$_{3−}$ (SCO) is a promising mate...
Scanning transmission electron microscopy (STEM) is a powerful tool that continues to advance our un...
The vacancy distribution of oxygen and its dynamics directly affect the functional response of compl...
An often-overlooked property of transition metal oxide thin films is their microscopic surface struc...
Topotactic phase transformation enables structural transition without losing the crystalline symmetr...
Transition metal oxides are a big research topic, because they offer a wide range of possible applic...
SrCoO3-δ (SCO) has been drawing large attention due to its intriguing topotactic phase transiti...
Topotactic transitions, i.e. reversible crystallographic varies as a result of the controllable stoi...
Transition metal perovskite oxides are promising electrocatalysts for the oxygen reduction reaction ...
Transition metal perovskite oxides are promising electrocatalysts for the oxygen reduction reaction ...
Reversible topotactic transitions between oxygen-vacancy-ordered structures in transition-metal oxid...
Defect engineering has brought about a unique level of control for Si-based semiconductors, leading ...
Strontium cobaltite (SrCoO3−) exists in two topotactic phases, depending on the oxygen content. SrCo...
Oxygen defects and their atomic arrangements play a significant role in the physical properties of m...
Oxide materials facilitating high-ion mobility and fast-ion transport are highly sought after for ap...
Because of its multivalent Co states and high oxygen mobility SrCoO$_{3−}$ (SCO) is a promising mate...
Scanning transmission electron microscopy (STEM) is a powerful tool that continues to advance our un...
The vacancy distribution of oxygen and its dynamics directly affect the functional response of compl...
An often-overlooked property of transition metal oxide thin films is their microscopic surface struc...