Jungseok Chae
University of Maryland, College Park
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Publication
Featured researches published by Jungseok Chae.
Advanced Materials | 2015
Rui Dong; Yanjun Fang; Jungseok Chae; Jun Dai; Zhengguo Xiao; Qingfeng Dong; Yongbo Yuan; Andrea Centrone; Xiao Cheng Zeng; Jinsong Huang
Dr. R. Dong, Dr. Y. Fang, Z. Xiao, Dr. Q. Dong, Dr. Y. Yuan, Prof. X. C. Zeng, Prof. J. Huang Department of Mechanical and Materials Engineering University of Nebraska-Lincoln Lincoln , NE 68588 , USA E-mail: [email protected] Dr. J. Chae, Dr. A. Centrone Center for Nanoscale Science and Technology National Institute of Standards and Technology 100 Bureau Drive , Gaithersburg , MD 20899 , USA Dr. J. Chae Maryland Nanocenter University of Maryland College Park , MD 20742 , USA Dr. J. Dai, Prof. X. C. Zeng Department of Chemistry University of Nebraska-Lincoln Lincoln , NE 68588 , USA
Nano Letters | 2015
Jungseok Chae; Qingfeng Dong; Jinsong Huang; Andrea Centrone
CH3NH3PbI(3-x)Cl(x) perovskites enable fabrication of highly efficient solar cells. Chloride ions benefit the morphology, carrier diffusion length, and stability of perovskite films; however, whether those benefits stem from the presence of Cl(-) in the precursor solution or from their incorporation in annealed films is debated. In this work, the photothermal-induced resonance, an in situ technique with nanoscale resolution, is leveraged to measure the bandgap of CH3NH3PbI(3-x)Cl(x) films obtained by a multicycle coating process that produces high efficiency (∼16%) solar cells. Because chloride ions modify the perovskite lattice, thereby widening the bandgap, measuring the bandgap locally yields the local chloride content. After a mild annealing (60 min, 60 °C) the films consist of Cl-rich (x < 0.3) and Cl-poor phases that upon further annealing (110 °C) evolve into a homogeneous Cl-poorer (x < 0.06) phase, suggesting that methylammonium-chrloride is progressively expelled from the film. Despite the small chloride content, CH3NH3PbI(3-x)Cl(x) films show better thermal stability up to 140 °C with respect CH3NH3PbI3 films fabricated with the same methodology.
Science Advances | 2017
Evgheni Strelcov; Qingfeng Dong; Tao Li; Jungseok Chae; Yuchuan Shao; Yehao Deng; Alexei Gruverman; Jinsong Huang; Andrea Centrone
Evidence and control of ferroelastic (but not ferroelectric) domains in CH3NH3PbI3 perovskite are provided. Ferroelectricity has been proposed as a plausible mechanism to explain the high photovoltaic conversion efficiency in organic-inorganic perovskites; however, convincing experimental evidence in support of this hypothesis is still missing. Identifying and distinguishing ferroelectricity from other properties, such as piezoelectricity, ferroelasticity, etc., is typically nontrivial because these phenomena can coexist in many materials. In this work, a combination of microscopic and nanoscale techniques provides solid evidence for the existence of ferroelastic domains in both CH3NH3PbI3 polycrystalline films and single crystals in the pristine state and under applied stress. Experiments show that the configuration of CH3NH3PbI3 ferroelastic domains in single crystals and polycrystalline films can be controlled with applied stress, suggesting that strain engineering may be used to tune the properties of this material. No evidence of concomitant ferroelectricity was observed. Because grain boundaries have an impact on the long-term stability of organic-inorganic perovskite devices, and because the ferroelastic domain boundaries may differ from regular grain boundaries, the discovery of ferroelasticity provides a new variable to consider in the quest for improving their stability and enabling their widespread adoption.
Nano Letters | 2017
Jungseok Chae; Sangmin An; Georg Ramer; Vitalie Stavila; Glenn E. Holland; Yohan Yoon; A. Alec Talin; Mark D. Allendorf; Vladimir A. Aksyuk; Andrea Centrone
The atomic force microscope (AFM) offers a rich observation window on the nanoscale, yet many dynamic phenomena are too fast and too weak for direct AFM detection. Integrated cavity-optomechanics is revolutionizing micromechanical sensing; however, it has not yet impacted AFM. Here, we make a groundbreaking advance by fabricating picogram-scale probes integrated with photonic resonators to realize functional AFM detection that achieve high temporal resolution (<10 ns) and picometer vertical displacement uncertainty simultaneously. The ability to capture fast events with high precision is leveraged to measure the thermal conductivity (η), for the first time, concurrently with chemical composition at the nanoscale in photothermal induced resonance experiments. The intrinsic η of metal-organic-framework individual microcrystals, not measurable by macroscale techniques, is obtained with a small measurement uncertainty (8%). The improved sensitivity (50×) increases the measurement throughput 2500-fold and enables chemical composition measurement of molecular monolayer-thin samples. Our paradigm-shifting photonic readout for small probes breaks the common trade-off between AFM measurement precision and ability to capture transient events, thus transforming the ability to observe nanoscale dynamics in materials.
Advanced Energy Materials | 2015
Yongbo Yuan; Jungseok Chae; Yuchuan Shao; Qi Wang; Zhengguo Xiao; Andrea Centrone; Jinsong Huang
Physical Review Letters | 2012
Jungseok Chae; Suyong Jung; Andrea Young; Cory Dean; Lei Wang; Yuanda Gao; Kenji Watanabe; Takashi Taniguchi; James Hone; Kenneth L. Shepard; Phillip Kim; Nikolai B. Zhitenev; Joseph A. Stroscio
Advanced Optical Materials | 2014
Aaron M. Katzenmeyer; Jungseok Chae; Richard Kasica; Glenn E. Holland; Basudev Lahiri; Andrea Centrone
Optics Express | 2015
Jungseok Chae; Basudev Lahiri; John Kohoutek; Glenn E. Holland; Henri J. Lezec; Andrea Centrone
Nanoscale | 2015
Aaron M. Katzenmeyer; Glenn E. Holland; Jungseok Chae; Alan H. Band; Kevin Kjoller; Andrea Centrone
Nanoscale | 2017
Yohan Yoon; Jungseok Chae; Aaron M. Katzenmeyer; Heayoung P. Yoon; Joshua Schumacher; Sang M. An; Andrea Centrone; Nikolai B. Zhitenev