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Dive into the research topics where Shih- Chen is active.

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Featured researches published by Shih- Chen.


ACS Nano | 2013

Non-antireflective Scheme for Efficiency Enhancement of Cu(In,Ga)Se2 Nanotip Array Solar Cells

Yu-Kuang Liao; Yi-Chung Wang; Yu-Ting Yen; Chia-Hsiang Chen; Dan-Hua Hsieh; Shih-Chen Chen; Chia-Yu Lee; Chih-Chung Lai; Wei-Chen Kuo; Jenh-Yi Juang; Kaung-Hsiung Wu; Shun-Jen Cheng; Chih-Huang Lai; Fang-I Lai; Shou-Yi Kuo; Hao-Chung Kuo; Yu-Lun Chueh

We present systematic works in characterization of CIGS nanotip arrays (CIGS NTRs). CIGS NTRs are obtained by a one-step ion-milling process by a direct-sputtering process of CIGS thin films (CIGS TF) without a postselenization process. At the surface of CIGS NTRs, a region extending to 100 nm in depth with a lower copper concentration compared to that of CIGS TF has been discovered. After KCN washing, removal of secondary phases can be achieved and a layer with abundant copper vacancy (V(Cu)) was left. Such compositional changes can be a benefit for a CIGS solar cell by promoting formation of Cd-occupied Cu sites (Cd(Cu)) at the CdS/CIGS interface and creates a type-inversion layer to enhance interface passivation and carrier extraction. The raised V(Cu) concentration and enhanced Cd diffusion in CIGS NTRs have been verified by energy dispersive spectrometry. Strengthened adhesion of Al:ZnO (AZO) thin film on CIGS NTRs capped with CdS has also been observed in SEM images and can explain the suppressed series resistance of the device with CIGS NTRs. Those improvements in electrical characteristics are the main factors for efficiency enhancement rather than antireflection.


ACS Nano | 2014

Toward Omnidirectional Light Absorption by Plasmonic Effect for High-Efficiency Flexible Nonvacuum Cu(In,Ga)Se2 Thin Film Solar Cells

Shih-Chen Chen; Yi-Ju Chen; Wei Ting Chen; Yu-Ting Yen; Tsung Sheng Kao; Tsung-Yeh Chuang; Yu-Kuang Liao; Kaung-Hsiung Wu; Atsushi Yabushita; Tung-Po Hsieh; Martin D. B. Charlton; Din Ping Tsai; X Hao-Chung Kuo; Yu-Lun Chueh

We have successfully demonstrated a great advantage of plasmonic Au nanoparticles for efficient enhancement of Cu(In,Ga)Se2(CIGS) flexible photovoltaic devices. The incorporation of Au NPs can eliminate obstacles in the way of developing ink-printing CIGS flexible thin film photovoltaics (TFPV), such as poor absorption at wavelengths in the high intensity region of solar spectrum, and that occurs significantly at large incident angle of solar irradiation. The enhancement of external quantum efficiency and photocurrent have been systematically analyzed via the calculated electromagnetic field distribution. Finally, the major benefits of the localized surface plasmon resonances (LSPR) in visible wavelength have been investigated by ultrabroadband pump-probe spectroscopy, providing a solid evidence on the strong absorption and reduction of surface recombination that increases electron-hole generation and improves the carrier transportation in the vicinity of pn-juction.


Optics Express | 2012

Ultrafast carrier dynamics in Cu(In,Ga)Se 2 thin films probed by femtosecond pump-probe spectroscopy

Shih-Chen Chen; Yu-Kuang Liao; Hsueh-Ju Chen; Chia-Hsiang Chen; Chih-Huang Lai; Yu-Lun Chueh; Hao-Chung Kuo; Kaung-Hsiung Wu; Jenh-Yih Juang; Shun-Jen Cheng; Tung-Po Hsieh; Takayoshi Kobayashi

Ultrafast carrier dynamics in Cu(In,Ga)Se₂ films are investigated using femtosecond pump-probe spectroscopy. Samples prepared by direct sputtering and co-evaporation processes, which exhibited remarkably different crystalline structures and free carrier densities, were found to result in substantially different carrier relaxation and recombination mechanisms. For the sputtered CIGS films, electron-electron scattering and Auger recombination was observed, whereas for the co-evaporated CIGS films, bandgap renormalization accompanied by band filling effect and hot phonon relaxation was observed. The lifetime of defect-related recombination in the co-evaporated CIGS films is much longer than that in the direct-sputtered CIGS films, reflecting a better quality with higher energy conversion efficiency of the former.


Optics Express | 2012

Observation of unusual optical transitions in thin-film Cu(In,Ga)Se 2 solar cells

Yu-Kuang Liao; Shou-Yi Kuo; Woei-Tyng Lin; Fang-I Lai; Dan-Hua Hsieh; Min-An Tsai; Shih-Chen Chen; Ding-Wen Chiou; Jen-Chuang Chang; Kaung-Hsiung Wu; Shun-Jen Cheng; Hao-Chung Kuo

In this paper, we examine photoluminescence spectra of Cu(In,Ga)Se(2) (CIGS) via temperature-dependent and power-dependent photoluminescence (PL). Donor-acceptor pair (DAP) transition, near-band-edge transition were identified by their activation energies. S-shaped displacement of peak position was observed and was attributed to carrier confinement caused by potential fluctuation. This coincides well with the obtained activation energy at low temperature. We also present a model for transition from V(Se) to V(In) and to V(Cu) which illustrates competing mechanisms between DAPs recombinations.


Nanoscale Research Letters | 2017

A Comprehensive Study of One-Step Selenization Process for Cu(In1−x Ga x )Se2 Thin Film Solar Cells

Shih-Chen Chen; Sheng-Wen Wang; Shou-Yi Kuo; Jenh-Yih Juang; Po-Tsung Lee; Chih-Wei Luo; Kaung-Hsiung Wu; Hao-Chung Kuo

In this work, aiming at developing a rapid and environmental-friendly process for fabricating CuIn1−xGaxSe2 (CIGS) solar cells, we demonstrated the one-step selenization process by using selenium vapor as the atmospheric gas instead of the commonly used H2Se gas. The photoluminescence (PL) characteristics indicate that there exists an optimal location with superior crystalline quality in the CIGS thin films obtained by one-step selenization. The energy dispersive spectroscopy (EDS) reveals that the Ga lateral distribution in the one-step selenized CIGS thin film is intimately correlated to the blue-shifted PL spectra. The surface morphologies examined by scanning electron microscope (SEM) further suggested that voids and binary phase commonly existing in CIGS films could be successfully eliminated by the present one-step selenization process. The agglomeration phenomenon attributable to the formation of MoSe2 layer was also observed. Due to the significant microstructural improvement, the current–voltage (J-V) characteristics and external quantum efficiency (EQE) of the devices made of the present CIGS films have exhibited the remarkable carrier transportation characteristics and photon utilization at the optimal location, resulting in a high conversion efficiency of 11.28%. Correlations between the defect states and device performance of the one-step selenized CIGS thin film were convincingly delineated by femtosecond pump-probe spectroscopy.


Scientific Reports | 2016

In-Situ Probing Plasmonic Energy Transfer in Cu(In, Ga)Se2 Solar Cells by Ultrabroadband Femtosecond Pump-Probe Spectroscopy.

Shih-Chen Chen; Kaung-Hsiung Wu; Jia-Xing Li; Atsushi Yabushita; Shih-Han Tang; Chih-Wei Luo; Jenh-Yih Juang; Hao-Chung Kuo; Yu-Lun Chueh

In this work, we demonstrated a viable experimental scheme for in-situ probing the effects of Au nanoparticles (NPs) incorporation on plasmonic energy transfer in Cu(In, Ga)Se2 (CIGS) solar cells by elaborately analyzing the lifetimes and zero moment for hot carrier relaxation with ultrabroadband femtosecond pump-probe spectroscopy. The signals of enhanced photobleach (PB) and waned photoinduced absorption (PIA) attributable to surface plasmon resonance (SPR) of Au NPs were in-situ probed in transient differential absorption spectra. The results suggested that substantial carriers can be excited from ground state to lower excitation energy levels, which can reach thermalization much faster with the existence of SPR. Thus, direct electron transfer (DET) could be implemented to enhance the photocurrent of CIGS solar cells. Furthermore, based on the extracted hot carrier lifetimes, it was confirmed that the improved electrical transport might have been resulted primarily from the reduction in the surface recombination of photoinduced carriers through enhanced local electromagnetic field (LEMF). Finally, theoretical calculation for resonant energy transfer (RET)-induced enhancement in the probability of exciting electron-hole pairs was conducted and the results agreed well with the enhanced PB peak of transient differential absorption in plasmonic CIGS film. These results indicate that plasmonic energy transfer is a viable approach to boost high-efficiency CIGS solar cells.


ACS Applied Materials & Interfaces | 2017

Crystalline Engineering Toward Large-Scale High-Efficiency Printable Cu(In,Ga)Se2 Thin Film Solar Cells on Flexible Substrate by Femtosecond Laser Annealing Process

Shih-Chen Chen; Nian-Zu She; Kaung-Hsiung Wu; Yu-Ze Chen; Wei-Sheng Lin; Jia-Xing Li; Fang-I Lai; Jenh-Yih Juang; Chih-Wei Luo; Lung-Teng Cheng; Tung-Po Hsieh; Hao-Chung Kuo; Yu-Lun Chueh

Ink-printing method emerges as a viable way for manufacturing large-scale flexible Cu(In,Ga)Se2 (CIGS) thin film photovoltaic (TFPV) devices owing to its potential for the rapid process, mass production, and low-cost nonvacuum device fabrication. Here, we brought the femtosecond laser annealing (fs-LA) process into the ink-printing CIGS thin film preparation. The effects of fs-LA treatment on the structural and optoelectronic properties of the ink-printing CIGS thin films were systematically investigated. It was observed that, while the film surface morphology remained essentially unchanged under superheating, the quality of crystallinity was significantly enhanced after the fs-LA treatment. Moreover, a better stoichiometric composition was achieved with an optimized laser scanning rate of the laser beam, presumably due to the much reduced indium segregation phenomena, which is believed to be beneficial in decreasing the defect states of InSe, VSe, and InCu. Consequently, the shunt leakage current and recombination centers were both greatly decreased, resulting in a near 20% enhancement in photovoltaic conversion efficiency.


photovoltaic specialists conference | 2013

The effect of pulsewidth on preparing CuIn 1−x Ga x Se 2 thin film via pulse laser deposition

Shih-Chen Chen; Kaung-Hsiung Wu; Fang-I Lai; Takayoshi Kobayashi; Hao-Chung Kuo

We prepared CIGS thin films by pulsed laser deposition (PLD), the pulsewidth of the laser sources are nanosecond(ns) and femtosecond(fs), respectively. We compared their surface morphologies by scanning electron microscopy images. Following, we analyzed their crystal structure utilizing X-ray diffraction, and Raman spectroscopy. Finally, the ultrafast carrier dynamics measured by optical pump-optical probe (OPOP) system. The results of these measurements reveal the better chalcopyprite structure in fs PLD CIGS. And we obtained lower defect-related non-radiative recombination rate in fs PLD CIGS by using OPOP spectroscopy, reflecting a better quality with higher energy conversion efficiency of them.


Nanomaterials | 2017

Breakthrough to Non-Vacuum Deposition of Single-Crystal, Ultra-Thin, Homogeneous Nanoparticle Layers: A Better Alternative to Chemical Bath Deposition and Atomic Layer Deposition

Yu-Kuang Liao; Yung-Tsung Liu; Dan-Hua Hsieh; Tien-Lin Shen; Ming-Yang Hsieh; An-Jye Tzou; Shih-Chen Chen; Yu-Lin Tsai; Wei-Sheng Lin; Sheng-Wen Chan; Yen-Ping Shen; Shun-Jen Cheng; Chyong-Hua Chen; Kaung-Hsiung Wu; Hao-Ming Chen; Shou-Yi Kuo; Martin D. B. Charlton; Tung-Po Hsieh; Hao-Chung Kuo

Most thin-film techniques require a multiple vacuum process, and cannot produce high-coverage continuous thin films with the thickness of a few nanometers on rough surfaces. We present a new ”paradigm shift” non-vacuum process to deposit high-quality, ultra-thin, single-crystal layers of coalesced sulfide nanoparticles (NPs) with controllable thickness down to a few nanometers, based on thermal decomposition. This provides high-coverage, homogeneous thickness, and large-area deposition over a rough surface, with little material loss or liquid chemical waste, and deposition rates of 10 nm/min. This technique can potentially replace conventional thin-film deposition methods, such as atomic layer deposition (ALD) and chemical bath deposition (CBD) as used by the Cu(In,Ga)Se2 (CIGS) thin-film solar cell industry for decades. We demonstrate 32% improvement of CIGS thin-film solar cell efficiency in comparison to reference devices prepared by conventional CBD deposition method by depositing the ZnS NPs buffer layer using the new process. The new ZnS NPs layer allows reduction of an intrinsic ZnO layer, which can lead to severe shunt leakage in case of a CBD buffer layer. This leads to a 65% relative efficiency increase.


conference on lasers and electro optics | 2012

Ultrafast pump-probe spectroscopy of carrier relaxation dynamics in Cu(In, Ga)Se 2 thin films

Shih-Chen Chen; Yu-Kuang Liao; Hsueh-Ju Chen; Hao-Chung Kuo; Kaung-Hsiung Wu; Takayoshi Kobayashi

Ultrafast pump-probe spectroscopy of Cu(In, Ga)Se2 thin films was performed. We have found the non-radiative recombination dominated at room temperature. It could correlate to efficiency of Cu(In, Ga)Se2-based solar cells.

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Hao-Chung Kuo

National Chiao Tung University

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Kaung-Hsiung Wu

National Chiao Tung University

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Yu-Kuang Liao

National Chiao Tung University

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Yu-Lun Chueh

National Tsing Hua University

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Jenh-Yih Juang

National Chiao Tung University

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Dan-Hua Hsieh

National Chiao Tung University

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Chih-Wei Luo

National Chiao Tung University

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Shun-Jen Cheng

National Chiao Tung University

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Tung-Po Hsieh

National Central University

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