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Dive into the research topics where Qingzhen Yang is active.

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Featured researches published by Qingzhen Yang.


Biosensors and Bioelectronics | 2017

Advances in digital polymerase chain reaction (dPCR) and its emerging biomedical applications

Lei Cao; Xingye Cui; Jie Hu; Zedong Li; Jane Ru Choi; Qingzhen Yang; Min Lin; Li Ying Hui; Feng Xu

Since the invention of polymerase chain reaction (PCR) in 1985, PCR has played a significant role in molecular diagnostics for genetic diseases, pathogens, oncogenes and forensic identification. In the past three decades, PCR has evolved from end-point PCR, through real-time PCR, to its current version, which is the absolute quantitive digital PCR (dPCR). In this review, we first discuss the principles of all key steps of dPCR, i.e., sample dispersion, amplification, and quantification, covering commercialized apparatuses and other devices still under lab development. We highlight the advantages and disadvantages of different technologies based on these steps, and discuss the emerging biomedical applications of dPCR. Finally, we provide a glimpse of the existing challenges and future perspectives for dPCR.


Small | 2016

Capillary Origami Inspired Fabrication of Complex 3D Hydrogel Constructs

Moxiao Li; Qingzhen Yang; Hao Liu; Mushu Qiu; Tian Jian Lu; Feng Xu

Hydrogels have found broad applications in various engineering and biomedical fields, where the shape and size of hydrogels can profoundly influence their functions. Although numerous methods have been developed to tailor 3D hydrogel structures, it is still challenging to fabricate complex 3D hydrogel constructs. Inspired by the capillary origami phenomenon where surface tension of a droplet on an elastic membrane can induce spontaneous folding of the membrane into 3D structures along with droplet evaporation, a facile strategy is established for the fabrication of complex 3D hydrogel constructs with programmable shapes and sizes by crosslinking hydrogels during the folding process. A mathematical model is further proposed to predict the temporal structure evolution of the folded 3D hydrogel constructs. Using this model, precise control is achieved over the 3D shapes (e.g., pyramid, pentahedron, and cube) and sizes (ranging from hundreds of micrometers to millimeters) through tuning membrane shape, dimensionless parameter of the process (elastocapillary number Ce ), and evaporation time. This work would be favorable to multiple areas, such as flexible electronics, tissue regeneration, and drug delivery.


ACS Applied Materials & Interfaces | 2017

Magnetically Actuated Droplet Manipulation and Its Potential Biomedical Applications

Guoyou Huang; Moxiao Li; Qingzhen Yang; Yuhui Li; Hao Liu; Hui Yang; Feng Xu

Droplet manipulation has found broad applications in various engineering and biomedical fields, such as biochemistry, microfluidic systems, drug delivery, and tissue engineering. Many methods have been developed to enhance the ability for manipulating droplets, among which magnetically actuated droplet manipulation has attracted widespread interests due to its remote, noninvasive manipulation ability and biocompatibility. This review summarizes the approaches and their principles that enable actuating the droplet magnetically. The potential biomedical applications of such a technique in bioassay, cell assembly, and tissue engineering are given.


ACS Applied Materials & Interfaces | 2015

Fabrication of Microscale Hydrogels with Tailored Microstructures based on Liquid Bridge Phenomenon

Lin Wang; Mushu Qiu; Qingzhen Yang; Yuhui Li; Guoyou Huang; Min Lin; Tian Jian Lu; Feng Xu

Microscale hydrogels (microgels) find widespread applications in various fields, such as drug delivery, tissue engineering, and biosensing. The shape of the microgels is a critical parameter that can significantly influence their function in these applications. Although various methods have been developed (e.g., micromolding, photolithography, microfluidics, and mechanical deformation method), it is still technically challenging to fabricate microgels with tailored microstructures. In this study, we have developed a simple and versatile method for preparing microgels by stretching hydrogel precursor droplets between two substrates to form a liquid bridge. Microgels with tailored microstructures (e.g., barrel-like, dumbbell-like, or funnel-like shapes) have been achieved through adjusting the distance between and the hydrophobicity of the two substrates. The developed method holds great potential to impact multiple fields, such as drug delivery, tissue engineering, and biosensing.


Trends in Biotechnology | 2016

4D Bioprinting for Biomedical Applications

Bin Gao; Qingzhen Yang; Xin Zhao; Guorui Jin; Yufei Ma; Feng Xu


Advanced Functional Materials | 2017

Collective Wetting of a Natural Fibrous System and Its Application in Pump-Free Droplet Transfer

Yu Long Han; Moxiao Li; Qingzhen Yang; Guoyou Huang; Hao Liu; Yidan Qin; Guy M. Genin; Feng Li; Tian Jian Lu; Feng Xu


Chemical Physics | 2015

Determination of contact angle of droplet on convex and concave spherical surfaces

Dongyin Wu; Pengfei Wang; Ping Wu; Qingzhen Yang; Fusheng Liu; Yulong Han; Feng Xu; Lin Wang


International Journal of Heat and Mass Transfer | 2017

Electrohydrodynamic Rayleigh-Taylor instability in leaky dielectric fluids

Qingzhen Yang; Ben Q. Li; Feng Xu


ACS Biomaterials Science & Engineering | 2017

Bioprinting-Based PDLSC-ECM Screening for in Vivo Repair of Alveolar Bone Defect Using Cell-Laden, Injectable and Photocrosslinkable Hydrogels

Yufei Ma; Yuan Ji; Tianyu Zhong; Wanting Wan; Qingzhen Yang; Ang Li; Xiaohui Zhang; Min Lin


Scientific Reports | 2016

Self-Propelled Hovercraft Based on Cold Leidenfrost Phenomenon

Meng Shi; Xing Ji; Shangsheng Feng; Qingzhen Yang; Tian Jian Lu; Feng Xu

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Feng Xu

Xi'an Jiaotong University

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Tian Jian Lu

Xi'an Jiaotong University

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Hao Liu

Xi'an Jiaotong University

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Moxiao Li

Xi'an Jiaotong University

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Guoyou Huang

Xi'an Jiaotong University

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Min Lin

Xi'an Jiaotong University

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Mushu Qiu

Xi'an Jiaotong University

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Lei Cao

Xi'an Jiaotong University

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Lin Wang

Xi'an Jiaotong University

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