Feiyi Liao
University of Electronic Science and Technology of China
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Publication
Featured researches published by Feiyi Liao.
Journal of Materials Chemistry C | 2015
Yuan Lin; Dayu Feng; M. Gao; Yanda Ji; L. B. Jin; Guang Yao; Feiyi Liao; Y. Zhang; Chonglin Chen
The nature of dielectric loss in high dielectric constant CaCu3Ti4O12 (CCTO) thin films was systematically studied by characterizing the films grown in high-pressure oxygen annealing processes. The films were grown on (001) LaAlO3 substrates by a polymer assisted deposition (PAD) technique while the annealing processes were performed in various high oxygen pressure environments. Microstructural characterizations by X-ray diffraction and atomic force microscopy indicated that the phase and morphologies of the films were strongly impacted by the annealing oxygen pressures. It was found that the high oxygen pressure annealing can significantly reduce the dielectric loss, which may be attributed to the TiO2 phase separation in CCTO, good quality of thin films grown by the PAD technique and fewer oxygen vacancies. The optimized room temperature low dielectric loss tangent of 0.002 at 10–100 kHz was achieved in the samples annealed with high pressure O2 of about 5 atm, which is more than one order of magnitude lower than that from the normal pressure annealed samples.
Scientific Reports | 2017
Zhuocheng Yan; Taisong Pan; Guang Yao; Feiyi Liao; Zhenlong Huang; Hulin Zhang; Min Gao; Yin Zhang; Yuan Lin
Recent progresses on the Kirigami-inspired method provide a new idea to assemble three-dimensional (3D) functional structures with conventional materials by releasing the prestrained elastomeric substrates. In this paper, highly stretchable serpentine-like antenna is fabricated by a simple and quick “Cut-Transfer-Release” method for assembling stretchable 3D functional structures on an elastomeric substrate with a controlled shape. The mechanical reliability of the serpentine-like 3D stretchable antenna is evaluated by the finite element method and experiments. The antenna shows consistent radio frequency performance with center frequency at 5.6 GHz during stretching up to 200%. The 3D structure is also able to eliminate the hand effect observed commonly in the conventional antenna. This work is expected to spur the applications of novel 3D structures in the stretchable electronics.
Advanced Science | 2017
Zhuocheng Yan; Taisong Pan; Miaomiao Xue; Changyong Chen; Yan Cui; Guang Yao; Long Huang; Feiyi Liao; Wei Jing; Hulin Zhang; Min Gao; Daqing Guo; Yang Xia; Yuan Lin
Abstract Soft neural electrode arrays that are mechanically matched between neural tissues and electrodes offer valuable opportunities for the development of disease diagnose and brain computer interface systems. Here, a thermal release transfer printing method for fabrication of stretchable bioelectronics, such as soft neural electrode arrays, is presented. Due to the large, switchable and irreversible change in adhesion strength of thermal release tape, a low‐cost, easy‐to‐operate, and temperature‐controlled transfer printing process can be achieved. The mechanism of this method is analyzed by experiments and fracture‐mechanics models. Using the thermal release transfer printing method, a stretchable neural electrode array is fabricated by a sacrificial‐layer‐free process. The ability of the as‐fabricated electrode array to conform different curvilinear surfaces is confirmed by experimental and theoretical studies. High‐quality electrocorticography signals of anesthetized rat are collected with the as‐fabricated electrode array, which proves good conformal interface between the electrodes and dura mater. The application of the as‐fabricated electrode array on detecting the steady‐state visual evoked potentials research is also demonstrated by in vivo experiments and the results are compared with those detected by stainless‐steel screw electrodes.
Journal of Breath Research | 2017
Feiyi Liao; Zheng Zhu; Zhuocheng Yan; Guang Yao; Zhenlong Huang; Min Gao; Taisong Pan; Yin Zhang; Qiang Li; Xue Feng; Yuan Lin
Real-time monitoring of breath can provide clinically relevant information about apnea syndrome and other important aspects of human physiology. Here, we introduce a flexible skin-like breath sensor developed by transfer-printing vanadium dioxide (VO2) thin films on PDMS substrates. This flexible breath sensor can conformably laminate on the skin under the nose with different curvatures and operate at different environment temperatures through day and night. Attributed to the high temperature coefficient of resistance of VO2, the enhanced breath sensing performance was demonstrated and the response time and recovery time can be as fast as 0.5 s. The excellent sensing performance and fast response time indicate that the VO2-based breath sensor is feasible in monitoring breath for prevention of apnea syndrome.
Journal of Applied Physics | 2015
Zhenlong Huang; Min Gao; Taisong Pan; Yin Zhang; Bo Zeng; Weizheng Liang; Feiyi Liao; Yuan Lin
Carbon nanotube (CNT) arrays with aligned growth orientation and sponge CNTs which consist of flocculent carbon fibers with tiny CNTs on their surface were synthesized by chemical vapor deposition. Heat sinks based on CNT arrays or sponge CNTs were made to investigate their heat dissipation performance. It is found that their microstructures have strong impacts on the thermal performance by changing the coefficient of air convection. The long CNT arrays have good heat dissipation performance even under natural convection for its aligned structure and large contacting area with the air, while the sponge CNTs show larger improvement in heat dissipation ability under airflow due to their porous structure. The results give a good reference for developing low-cost, light-weight, and high-performance CNT-based heat sinks for chip cooling under different working conditions.
Advanced Healthcare Materials | 2017
Changyong Chen; Miaomiao Xue; Yige Wen; Guang Yao; Yan Cui; Feiyi Liao; Zhuocheng Yan; Long Huang; Saeed Ahmed Khan; Min Gao; Taisong Pan; Hulin Zhang; Wei Jing; Daqing Guo; Sanfeng Zhang; Hailiang Yao; Xiong Zhou; Qiang Li; Yang Xia; Yuan Lin
A new implantable capacitive electrode array for electrocorticography signal recording is developed with ferroelectric ceramic/polymer composite. This ultrathin and electrically safe capacitive electrode array is capable of attaching to the biological tissue conformably. The barium titanate/polyimide (BaTiO3 /PI) nanocomposite with high dielectric constant is successfully synthesized and employed as the ultrathin dielectric layer of the capacitive BaTiO3 /PI electrode array. The performance of the capacitive BaTiO3 /PI electrode array is evaluated by electrical characterization and 3D finite-element modeling. In vivo, neural experiments on the visual cortex of rats show the reliability of the capacitive BaTiO3 /PI electrode array. This work shows the potentials of capacitive BaTiO3 /PI electrode array in the field of brain/computer interfaces.
IEEE Electron Device Letters | 2017
Feiyi Liao; Chang Lu; Guang Yao; Zhuocheng Yan; Min Gao; Taisong Pan; Yin Zhang; Xue Feng; Yuan Lin
Flexible temperature and mechanical sensing capabilities are of great importance in the artificial intelligence. Here, we report a skin conformable, high sensitive temperature-mechanical dual-parameter sensor based on a PET/vanadium dioxide (VO2)/PDMS multilayer structure fabricated using the transfer printing technique. The ultrahigh mechanical sensitivity to strains in the range of 0%–0.1% with a gauge factor over 400 was attributed to the disconnection-reconnection process of the ziplike nanoscale cracks under strain or vibration. And the enhanced temperature sensing performance with a resolution of 0.1 K was attributed to the high temperature coefficient of resistance of VO2 material. The temperature and the mechanical signals simultaneously recorded in the electrical resistance signal were separated via fast Fourier transform (FFT) and inverse FFT. The flexibility and ultra-sensitivity to temperature and vibration make the sensor a promising application in advanced artificial intelligence.
Journal of Alloys and Compounds | 2015
Shangjie Zhang; Hulin Zhang; Guang Yao; Feiyi Liao; M. Gao; Zhenlong Huang; Kunyang Li; Yuan Lin
Nanoscale | 2016
Zhenlong Huang; Min Gao; Zhuocheng Yan; Taisong Pan; Feiyi Liao; Yuan Lin
RSC Advances | 2017
Guang Yao; Hulin Zhang; Shangjie Zhang; Feiyi Liao; Zhenlong Huang; Bixiong Bie; Yuan Lin
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University of Electronic Science and Technology of China
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