Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where I-Cheng Tung is active.

Publication


Featured researches published by I-Cheng Tung.


Nature Materials | 2013

Reversible redox reactions in an epitaxially stabilized SrCoO x oxygen sponge

Hyoungjeen Jeen; Woo Seok Choi; Michael D. Biegalski; C. M. Folkman; I-Cheng Tung; Dillon D. Fong; J. W. Freeland; Dongwon Shin; Hiromichi Ohta; Matthew F. Chisholm; Ho Nyung Lee

Fast, reversible redox reactions in solids at low temperatures without thermomechanical degradation are a promising strategy for enhancing the overall performance and lifetime of many energy materials and devices. However, the robust nature of the cations oxidation state and the high thermodynamic barrier have hindered the realization of fast catalysis and bulk diffusion at low temperatures. Here, we report a significant lowering of the redox temperature by epitaxial stabilization of strontium cobaltites (SrCoO(x)) grown directly as one of two distinct crystalline phases, either the perovskite SrCoO(3-δ) or the brownmillerite SrCoO(2.5). Importantly, these two phases can be reversibly switched at a remarkably reduced temperature (200-300 °C) in a considerably short time (< 1 min) without destroying the parent framework. The fast, low-temperature redox activity in SrCoO(3-δ) is attributed to a small Gibbs free-energy difference between two topotatic phases. Our findings thus provide useful information for developing highly sensitive electrochemical sensors and low-temperature cathode materials.


Nature Materials | 2014

Dynamic layer rearrangement during growth of layered oxide films by molecular beam epitaxy

J. H. Lee; Guangfu Luo; I-Cheng Tung; Siliang Chang; Z. Luo; M. Malshe; Milind Gadre; Anand Bhattacharya; Serge M. Nakhmanson; J. A. Eastman; H. Hong; J. Jellinek; Dane Morgan; Dillon D. Fong; J. W. Freeland

The A(n+1)B(n)O(3n+1) Ruddlesden-Popper homologous series offers a wide variety of functionalities including dielectric, ferroelectric, magnetic and catalytic properties. Unfortunately, the synthesis of such layered oxides has been a major challenge owing to the occurrence of growth defects that result in poor materials behaviour in the higher-order members. To understand the fundamental physics of layered oxide growth, we have developed an oxide molecular beam epitaxy system with in situ synchrotron X-ray scattering capability. We present results demonstrating that layered oxide films can dynamically rearrange during growth, leading to structures that are highly unexpected on the basis of the intended layer sequencing. Theoretical calculations indicate that rearrangement can occur in many layered oxide systems and suggest a general approach that may be essential for the construction of metastable Ruddlesden-Popper phases. We demonstrate the utility of the new-found growth strategy by performing the first atomically controlled synthesis of single-crystalline La3Ni2O7.


Physical Review B | 2013

Charge transfer and interfacial magnetism in (LaNiO3)n/(LaMnO3)2superlattices

Jason Hoffman; I-Cheng Tung; Brittany B. Nelson-Cheeseman; Ming Liu; J. W. Freeland; Anand Bhattacharya

(LaNiO3)n/(LaMnO3)2 superlattices were grown using ozone-assisted molecular beam epitaxy, where LaNiO3 is a paramagnetic metal and LaMnO3 is an antiferromagnetic insulator. The superlattices exhibit excellent crystallinity and interfacial roughness of less than 1 unit cell. X-ray spectroscopy and dichroism measurements indicate that electrons are transferred from the LaMnO3 to the LaNiO3, inducing magnetism in LaNiO3. Magnetotransport measurements reveal a transition from metallic to insulating behavior as the LaNiO3 layer thickness is reduced from 5 unit cells to 2 unit cells and suggest a modulated magnetic structure within LaNiO3.


Nano Letters | 2017

Dynamic Optical Tuning of Interlayer Interactions in the Transition Metal Dichalcogenides

Ehren M. Mannebach; Clara Nyby; Friederike Ernst; Yao Zhou; John R. Tolsma; Yao Li; Meng-Ju Sher; I-Cheng Tung; Hua Zhou; Qi Zhang; Kyle Seyler; Genevieve Clark; Yu Lin; Diling Zhu; J. M. Glownia; Michael Kozina; Sanghoon Song; S. Nelson; Apurva Mehta; Yifei Yu; Anupum Pant; Ozgur Burak Aslan; Archana Raja; Yinsheng Guo; Anthony D. DiChiara; Wendy L. Mao; Linyou Cao; Sefaattin Tongay; Jifeng Sun; David J. Singh

Modulation of weak interlayer interactions between quasi-two-dimensional atomic planes in the transition metal dichalcogenides (TMDCs) provides avenues for tuning their functional properties. Here we show that above-gap optical excitation in the TMDCs leads to an unexpected large-amplitude, ultrafast compressive force between the two-dimensional layers, as probed by in situ measurements of the atomic layer spacing at femtosecond time resolution. We show that this compressive response arises from a dynamic modulation of the interlayer van der Waals interaction and that this represents the dominant light-induced stress at low excitation densities. A simple analytic model predicts the magnitude and carrier density dependence of the measured strains. This work establishes a new method for dynamic, nonequilibrium tuning of correlation-driven dispersive interactions and of the optomechanical functionality of TMDC quasi-two-dimensional materials.


International Conference on Ultrafast Phenomena (2016), paper UW2A.1 | 2016

Ultrafast atomic-scale structural response in monolayer and multilayer transition metal dichalcogenides

Ehren M. Mannebach; I-Cheng Tung; Clara Nyby; Hua Zhou; Qingteng Zhang; Friederike Ernst; Kyle Seyler; Genevieve Clark; Yu Lin; Diling Zhu; James M. Glownia; M. Kozina; Sanghoon Song; S. Nelson; Yifei Yu; Anupum Pant; Archana Raja; Yinsheng Guo; Anthony D. DiChiara; Wendy L. Mao; Linyou Cao; Sefaattin Tongay; Tony F. Heinz; Xiaodong Xu; Haidan Wen; Aaron M. Lindenberg

Femtosecond x-ray studies of 2D transition metal dichalcogenide films reveal ultrafast in-plane and out-of-plane responses, including compression of the out-of-plane lattice spacing, structure factor modulations, and in-plane dynamics occurring on few picosecond time-scales.


Physical Review Materials | 2017

Polarity-driven oxygen vacancy formation in ultrathin LaNiO3 films on SrTiO3

I-Cheng Tung; Guangfu Luo; J. H. Lee; Seo Hyoung Chang; Jarrett A. Moyer; Hawoong Hong; Michael J. Bedzyk; Hua Zhou; Dane Morgan; Dillon D. Fong; J. W. Freeland


Physical Review Materials | 2017

Structural imaging of nanoscale phonon transport in ferroelectrics excited by metamaterial-enhanced terahertz fields

Yi Zhu; Frank Chen; Joonkyu Park; Kiran Sasikumar; Bin Hu; Anoop R. Damodaran; Il Woong Jung; M. J. Highland; Zhonghou Cai; I-Cheng Tung; Donald A. Walko; J. W. Freeland; Lane W. Martin; Subramanian K. R. S. Sankaranarayanan; Paul G. Evans; Aaron M. Lindenberg; Haidan Wen


Physical Review B | 2017

Controlling phase separation in vanadium dioxide thin films via substrate engineering

Stephanie N. Gilbert Corder; Jianjuan Jiang; Xinzhong Chen; Salinporn Kittiwatanakul; I-Cheng Tung; Yi Zhu; Jiawei Zhang; Hans A. Bechtel; Michael C. Martin; G. Lawrence Carr; Jiwei Lu; Stuart A. Wolf; Haidan Wen; Tiger H. Tao; Mengkun Liu


Bulletin of the American Physical Society | 2016

Correlating Structural and Electronic Degrees of Freedom in 2D Transition Metal Dichalcogenides

I-Cheng Tung; Z. Zhang; K. L. Seyler; A. M. Jones; G. Clark; D. Xiao; N. Laanait; X. Xu; H. Wen


Bulletin of the American Physical Society | 2016

Polarity and the Metal-Insulator Transition in ultrathin LaNiO

J. W. Freeland; I-Cheng Tung; Guangfu Luo; Hua Zhou; J. H. Lee; Seo Hyoung Chang; Dane Morgan; Michael J. Bedzyk; Dillon D. Fong

Collaboration


Dive into the I-Cheng Tung's collaboration.

Top Co-Authors

Avatar

J. W. Freeland

Argonne National Laboratory

View shared research outputs
Top Co-Authors

Avatar

Dillon D. Fong

Argonne National Laboratory

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Hawoong Hong

Argonne National Laboratory

View shared research outputs
Top Co-Authors

Avatar

Dane Morgan

University of Wisconsin-Madison

View shared research outputs
Top Co-Authors

Avatar

Guangfu Luo

University of Wisconsin-Madison

View shared research outputs
Top Co-Authors

Avatar

Hua Zhou

Argonne National Laboratory

View shared research outputs
Top Co-Authors

Avatar

Anand Bhattacharya

Argonne National Laboratory

View shared research outputs
Top Co-Authors

Avatar

Haidan Wen

Argonne National Laboratory

View shared research outputs
Researchain Logo
Decentralizing Knowledge