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Dive into the research topics where Ting-Hsiang Chang is active.

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Featured researches published by Ting-Hsiang Chang.


Advanced Materials | 2015

Planar Heterojunction Perovskite Solar Cells Incorporating Metal–Organic Framework Nanocrystals

Ting-Hsiang Chang; Chung-Wei Kung; Hsin-Wei Chen; Tzu-Yen Huang; Sheng-Yuan Kao; Hsin-Che Lu; Min-Han Lee; Karunakara Moorthy Boopathi; Chih-Wei Chu; Kuo-Chuan Ho

Zr-based porphyrin metal-organic framework (MOF-525) nanocrystals with a crystal size of about 140 nm are synthesized and incorporated into perovskite solar cells. The morphology and crystallinity of the perovskite thin film are enhanced since the micropores of MOF-525 allow the crystallization of perovskite to occur inside; this observation results in a higher cell efficiency of the obtained MOF/perovskite solar cell.


Scientific Reports | 2016

Efficiency Enhancement of Hybrid Perovskite Solar Cells with MEH-PPV Hole-Transporting Layers

Hsin-Wei Chen; Tzu-Yen Huang; Ting-Hsiang Chang; Yoshitaka Sanehira; Chung-Wei Kung; Chih-Wei Chu; Masashi Ikegami; Tsutomu Miyasaka; Kuo-Chuan Ho

In this study, hybrid perovskite solar cells are fabricated using poly[2-methoxy-5-(2-ethylhexyloxy)-1,4-phenylenevinylene] (MEH-PPV) and poly(3-hexylthiophene-2,5-diyl) (P3HT) as dopant-free hole-transporting materials (HTMs), and two solution processes (one- and two-step methods, respectively) for preparing methylammonium lead iodide perovskite. By optimizing the concentrations and solvents of MEH-PPV solutions, a power conversion efficiency of 9.65% with hysteresis-less performance is achieved, while the device with 2,2′,7,7′-tetrakis(N,N-di-p-methoxyphenylamine)-9,9′spirobifluorene (Spiro-OMeTAD) doped with lithium salts and tert-butylpyridine (TBP) exhibits an efficiency of 13.38%. This result shows that non-doped MEH-PPV is a suitable, low-cost HTM for efficient polymer-based perovskite solar cells. The effect of different morphologies of methylammonium lead iodide perovskite on conversion efficiency is also investigated by incident photon-to-electron conversion efficiency (IPCE) curves and electrochemical impedance spectroscopy (EIS).


ACS Applied Materials & Interfaces | 2016

Thermally Cured Dual Functional Viologen-Based All-in-One Electrochromic Devices with Panchromatic Modulation

Sheng-Yuan Kao; Hsin-Che Lu; Chung-Wei Kung; Hsin-Wei Chen; Ting-Hsiang Chang; Kuo-Chuan Ho

Vinyl benzyl viologen (VBV) was synthesized and utilized to obtain all-in-one thermally cured electrochromic devices (ECDs). The vinyl moiety of VBV monomer could react with methyl methacrylate (MMA) to yield bulky VBV/poly(methyl methacrylate) (PMMA) chains and even cross-linked network without the assistance of additional cross-linker. Both the bulky VBV/PMMA chains and the resulting polymer network can hinder the aggregation of the viologens and reduce the possibility of dimerization, rendering enhanced cycling stability. Large transmittance changes (ΔT) over 60% at both 570 and 615 nm were achieved when the VBV-based ECD was switched from 0 V to a low potential bias of 0.5 V. Ultimately, the dual functional of VBV molecules, serving simultaneously as a promising electrochromic material and a cross-linker, is fully utilized in the proposed electrochromic system, making its fabrication process much easier. Negligible decays in ΔT at both wavelengths were observed for the cured ECD after being subjected to 1000 repetitive cycles, while 17.1% and 22.0% decays were noticed at 570 and 615 nm, respectively, for the noncured ECD. In addition, the low voltage-driven feature of the VBV-based ECD enables it to be incorporated with phenyl viologen (PV), further expanding the absorption range of the ECD. Panchromatic characteristic of the proposed PV/VBV-based ECD was demonstrated while exhibiting ΔT over 60% at both wavelengths. Only 5.3% and 6.9% decays, corresponding at 570 and 615 nm, respectively, were observed in the PV/VBV-based ECD after 10 000 continuous cycles at bleaching/coloring voltages of 0/0.5 V with an interval of 10 s for both bleaching and coloring processes.


Journal of Materials Chemistry | 2016

Inkjet-printed porphyrinic metal–organic framework thin films for electrocatalysis

Chun-Hao Su; Chung-Wei Kung; Ting-Hsiang Chang; Hsin-Che Lu; Kuo-Chuan Ho; Ying-Chih Liao

In this study, a simple and effective direct inkjet printing method was developed to prepare porphyrinic metal–organic framework (MOF) thin films for electrocatalysis. First, crystals of a zirconium-based porphyrinic MOF (MOF-525) with crystal sizes ranging from 100 to 700 nm were synthesized by adjusting the content of benzoic acid in a solvothermal synthetic process. The synthesized crystals showed a similar surface area of 2500 m2 g−1 with a unique pore size of 1.85 nm. However, some structural defects were found in the smallest crystals of 100 nm due to the fast crystallization process. After being suspended in dimethylformamide, the MOF crystal suspensions were inkjet printed to fabricate uniform MOF-525 thin film patterns. With the help of great precision in liquid deposition, the thicknesses of the printed MOF-525 thin films can be accurately controlled by the number of printed layers. With smaller crystal sizes, the printed MOF thin films showed more compact stacking and better contact with the substrate. The printed MOF thin films were applied for electrocatalytic nitrite oxidation. The effects of both film thickness and crystal size on the printed film morphology and electrocatalytic activity were investigated in detail. The printed MOF nitrite sensor showed a great detection limit of 0.72 μM and a high sensitivity of 40.6 μA mM−1 cm−2. In summary, this study demonstrated the feasibility of the proposed printing process for electrochemically addressable MOF thin films and can be further applied for many other electrochemical applications.


Advanced Science | 2017

Enhanced Charge Collection in MOF-525–PEDOT Nanotube Composites Enable Highly Sensitive Biosensing

Tzu-Yen Huang; Chung-Wei Kung; Yu-Te Liao; Sheng-Yuan Kao; Mingshan Cheng; Ting-Hsiang Chang; Joel Henzie; Hatem R. Alamri; Zeid Abdullah Alothman; Yusuke Yamauchi; Kuo-Chuan Ho; Kevin C.-W. Wu

Abstract With the aim of a reliable biosensing exhibiting enhanced sensitivity and selectivity, this study demonstrates a dopamine (DA) sensor composed of conductive poly(3,4‐ethylenedioxythiophene) nanotubes (PEDOT NTs) conformally coated with porphyrin‐based metal–organic framework nanocrystals (MOF‐525). The MOF‐525 serves as an electrocatalytic surface, while the PEDOT NTs act as a charge collector to rapidly transport the electron from MOF nanocrystals. Bundles of these particles form a conductive interpenetrating network film that together: (i) improves charge transport pathways between the MOF‐525 regions and (ii) increases the electrochemical active sites of the film. The electrocatalytic response is measured by cyclic voltammetry and differential pulse voltammetry techniques, where the linear concentration range of DA detection is estimated to be 2 × 10−6–270 × 10−6 m and the detection limit is estimated to be 0.04 × 10−6 m with high selectivity toward DA. Additionally, a real‐time determination of DA released from living rat pheochromocytoma cells is realized. The combination of MOF5‐25 and PEDOT NTs creates a new generation of porous electrodes for highly efficient electrochemical biosensing.


Chemistry-an Asian Journal | 2017

Synthesis of MOF-525 Derived Nanoporous Carbons with Different Particle Sizes for Supercapacitor Application

Ting-Hsiang Chang; Christine Young; Min-Han Lee; Rahul R. Salunkhe; Saad M. Alshehri; Tansir Ahamad; Md. Tofazzal Islam; Kevin C.-W. Wu; Md. Shahriar A. Hossain; Yusuke Yamauchi; Kuo-Chuan Ho

Nanoporous carbon (NC) materials have attracted great research interest for supercapacitor applications, because of their excellent electrochemical and mechanical stability, good electrical conductivity, and high surface area. Although there are many reports on metal-organic framework (MOF)-derived carbon materials, previous synthetic studies have been hindered by imperfect control of particle sizes and shapes. Here, we show precise control of the particle sizes of MOF-525 from 100 nm to 750 nm. After conversion of MOF-525 to NC, the effects of variation of the particle size on the electrochemical performance have been carefully investigated. The results demonstrate that our NC is a potential candidate for practical supercapacitor applications.


Solar Energy Materials and Solar Cells | 2016

An electrochromic device based on Prussian blue, self-immobilized vinyl benzyl viologen, and ferrocene

Hsin-Che Lu; Sheng-Yuan Kao; Ting-Hsiang Chang; Chung-Wei Kung; Kuo-Chuan Ho


ACS Applied Materials & Interfaces | 2016

Achieving Low-Energy Driven Viologens-Based Electrochromic Devices Utilizing Polymeric Ionic Liquids

Hsin-Che Lu; Sheng-Yuan Kao; Hsin-Fu Yu; Ting-Hsiang Chang; Chung-Wei Kung; Kuo-Chuan Ho


Solar Energy Materials and Solar Cells | 2016

A high contrast solid-state electrochromic device based on nano-structural Prussian blue and poly(butyl viologen) thin films

Miao-Syuan Fan; Sheng-Yuan Kao; Ting-Hsiang Chang; R. Vittal; Kuo-Chuan Ho


Solar Energy Materials and Solar Cells | 2015

An all-organic solid-state electrochromic device containing poly(vinylidene fluoride-co-hexafluoropropylene), succinonitrile, and ionic liquid

Ting-Hsiang Chang; Chih-Wei Hu; Sheng-Yuan Kao; Chung-Wei Kung; Hsin-Wei Chen; Kuo-Chuan Ho

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Kuo-Chuan Ho

National Taiwan University

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Sheng-Yuan Kao

National Taiwan University

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Hsin-Che Lu

National Taiwan University

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Hsin-Wei Chen

National Taiwan University

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Min-Han Lee

National Taiwan University

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Tzu-Yen Huang

National Taiwan University

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Chih-Wei Hu

National Taiwan University

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Kevin C.-W. Wu

National Taiwan University

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