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Dive into the research topics where Xiaotian Hu is active.

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Featured researches published by Xiaotian Hu.


Advanced Materials | 2017

Wearable Large‐Scale Perovskite Solar‐Power Source via Nanocellular Scaffold

Xiaotian Hu; Zengqi Huang; Xue Zhou; Pengwei Li; Yang Wang; Zhandong Huang; Meng Su; Wanjie Ren; Fengyu Li; Yiwang Chen; Yanlin Song

Dramatic advances in perovskite solar cells (PSCs) and the blossoming of wearable electronics have triggered tremendous demands for flexible solar-power sources. However, the fracturing of functional crystalline films and transmittance wastage from flexible substrates are critical challenges to approaching the high-performance PSCs with flexural endurance. In this work, a nanocellular scaffold is introduced to architect a mechanics buffer layer and optics resonant cavity. The nanocellular scaffold releases mechanical stresses during flexural experiences and significantly improves the crystalline quality of the perovskite films. The nanocellular optics resonant cavity optimizes light harvesting and charge transportation of devices. More importantly, these flexible PSCs, which demonstrate excellent performance and mechanical stability, are practically fabricated in modules as a wearable solar-power source. A power conversion efficiency of 12.32% for a flexible large-scale device (polyethylene terephthalate substrate, indium tin oxide-free, 1.01 cm2 ) is achieved. This ingenious flexible structure will enable a new approach for development of wearable electronics.


Advanced Materials | 2018

A 3D Self-Shaping Strategy for Nanoresolution Multicomponent Architectures

Meng Su; Zhandong Huang; Yifan Li; Xin Qian; Zheng Li; Xiaotian Hu; Qi Pan; Fengyu Li; Lihong Li; Yanlin Song

3D printing or fabrication pursues the essential surface behavior manipulation of droplets or a liquid for rapidly and precisely constructing 3D multimaterial architectures. Further development of 3D fabrication desires a self-shaping strategy that can heterogeneously integrate functional materials with disparate electrical or optical properties. Here, a 3D liquid self-shaping strategy is reported for rapidly patterning materials over a series of compositions and accurately achieving micro- and nanoscale structures. The predesigned template selectively pins the droplet, and the surface energy minimization drives the self-shaping processing. The as-prepared 3D circuits assembled by silver nanoparticles carry a current of 208-448 µA at 0.01 V impressed voltage, while the 3D architectures achieved by two different quantum dots show noninterfering optical properties with feature resolution below 3 µm. This strategy can facilely fabricate micro-nanogeometric patterns without a modeling program, which will be of great significance for the development of 3D functional devices.


Small | 2018

Patterned Arrays of Functional Lateral Heterostructures via Sequential Template-Directed Printing

Yifan Li; Meng Su; Zheng Li; Zhandong Huang; Fengyu Li; Qi Pan; Wanjie Ren; Xiaotian Hu; Yanlin Song

The precise integration of microscale dots and lines with controllable interfacing connections is highly important for the fabrication of functional devices. To date, the solution-processible methods are used to fabricate the heterogeneous micropatterns for different materials. However, for increasingly miniaturized and multifunctional devices, it is extremely challenging to engineer the uncertain kinetics of a solution on the microstructures surfaces, resulting in uncontrollable interface connections and poor device performance. Here, a sequential template-directed printing process is demonstrated for the fabrication of arrayed microdots connected by microwires through the regulation of the Rayleigh-Taylor instability of material solution or suspension. Flexibility in the control of fluidic behaviors can realize precise interface connection between the micropatterns, including the microwires traversing, overlapping or connecting the microdots. Moreover, various morphologies such as circular, rhombic, or star-shaped microdots as well as straight, broken or curved microwires can be achieved. The lateral heterostructure printed with two different quantum dots displays bright dichromatic photoluminescence. The ammonia gas sensor printed by polyaniline and silver nanoparticles exhibits a rapid response time. This strategy can construct heterostructures in a facile manner by eliminating the uncertainty of the multimaterials interface connection, which will be promising for the development of novel lateral functional devices.


Energy and Environmental Science | 2018

Nacre-inspired crystallization and elastic “brick-and-mortar” structure for a wearable perovskite solar module

Xiaotian Hu; Zengqi Huang; Fengyu Li; Meng Su; Zhandong Huang; Zhipeng Zhao; Zheren Cai; Xia Yang; Xiangchuan Meng; Pengwei Li; Yang Wang; Yiwang Chen; Yanlin Song

Perovskite solar cells (PSCs) are promising candidates for power sources to sustainably drive next-generation wearable electronics, following the advances in PSCs and future desires of harvesting and storing energy integration. However, the natural brittle property of crystals for elastic deformation restricts the mechanical robustness, which definitely results in degraded efficiency. In fact, the crystalline quality and “cask effect” impact large-area reproducibility of PSCs. Inspired by the highly crystalline and tough nacre, herein, we report biomimetic crystallization to grow high-quality perovskite films with an elastic “brick-and-mortar” structure. The antithetic solubility of the composite matrix facilitates perpendicular micro-parallel crystallization and affords stretchability to resolve the “cask effect” of flexible PSCs. We successfully fabricate PSC chips (1 cm2 area) with average efficiencies of 19.59% and 15.01% on glass and stretchable substrates, respectively. Importantly, a recorded 56.02 cm2 area wearable solar-power source with 7.91% certified conversion efficiency is achieved. This skin fitting power source shows bendability, stretchability and twistability and is practically assembled in wearable electronics.


Analytical Chemistry | 2018

Bioinspired Synergy Sensor Chip of Photonic Crystals-Graphene Oxide for Multiamines Recognition

Wanjie Ren; Meng Qin; Xiaotian Hu; Fengyu Li; Yuanfeng Wang; Yu Huang; Meng Su; Wenbo Li; Xin Qian; Kanglai Tang; Yanlin Song

Benefiting from the integrated functions of cilia and glomeruli in the olfactory system, animals can discriminate various odors even in hostile environments. Inspired by this synergetic system of response and signal processing units, a sensor chip of graphene oxide (GO) and photonic crystals (PCs) is fabricated. The GO aerogel functions like the olfactory cilia, which effectively captures the analytes and generates abundant sensing signals for recognition; and the PCs act as the olfactory glomeruli, whose periodic structure enables selective enhancement of the fluorescent signals to realize further signal processing. Ten biogenic amines and seven drug amines are effectively discriminated. The integrated sensor strategy of response and signal manipulation units will promote enormous pursuits of rapid clinical diagnosis or intractable pathology analysis.


Advanced Materials | 2018

Printable Skin‐Driven Mechanoluminescence Devices via Nanodoped Matrix Modification

Xin Qian; Zheren Cai; Meng Su; Fengyu Li; Wei Fang; Yudong Li; Xue Zhou; Qunyang Li; Xi-Qiao Feng; Wenbo Li; Xiaotian Hu; Xiandi Wang; Caofeng Pan; Yanlin Song

Mechanically driven light generation is an exciting and under-exploited phenomenon with a variety of possible practical applications. However, the current driving mode of mechanoluminescence (ML) devices needs strong stimuli. Here, a flexible sensitive ML device via nanodopant elasticity modulus modification is introduced. Rigid ZnS:M2+ (Mn/Cu)@Al2 O3 microparticles are dispersed into soft poly(dimethylsiloxane) (PDMS) film and printed out to form flexible devices. For various flexible and sensitive scenes, SiO2 nanoparticles are adopted to adjust the elasticity modulus of the PDMS matrix. The doped nanoparticles can concentrate stress to ZnS:M2+ (Mn/Cu)@Al2 O3 microparticles and achieve intense ML under weak stimuli of the moving skin. The printed nano-/microparticle-doped matrix film can achieve skin-driven ML, which can be adopted to present fetching augmented animations expressions. The printable ML film, amenable to large areas, low-cost manufacturing, and mechanical softness will be versatile on stress visualization, luminescent sensors, and open definitely new functional skin with novel augmented animations expressions, the photonic skin.


Advanced Materials | 2018

A General Approach for Fluid Patterning and Application in Fabricating Microdevices

Zhandong Huang; Qiang Yang; Meng Su; Zheng Li; Xiaotian Hu; Yifan Li; Qi Pan; Wanjie Ren; Fengyu Li; Yanlin Song

Engineering the fluid interface such as the gas-liquid interface is of great significance for solvent processing applications including functional material assembly, inkjet printing, and high-performance device fabrication. However, precisely controlling the fluid interface remains a great challenge owing to its flexibility and fluidity. Here, a general method to manipulate the fluid interface for fluid patterning using micropillars in the microchannel is reported. The principle of fluid patterning for immiscible fluid pairs including air, water, and oils is proposed. This understanding enables the preparation of programmable multiphase fluid patterns and assembly of multilayer functional materials to fabricate micro-optoelectronic devices. This general strategy of fluid patterning provides a promising platform to study the fundamental processes occurring on the fluid interface, and benefits applications in many subjects, such as microfluidics, microbiology, chemical analysis and detection, material synthesis and assembly, device fabrication, etc.


Advanced Functional Materials | 2017

Nucleation and Crystallization Control via Polyurethane to Enhance the Bendability of Perovskite Solar Cells with Excellent Device Performance

Zengqi Huang; Xiaotian Hu; Cong Liu; Licheng Tan; Yiwang Chen


Nano Energy | 2018

Inkjet manipulated homogeneous large size perovskite grains for efficient and large-area perovskite solar cells

Pengwei Li; Chao Liang; Bin Bao; Yanan Li; Xiaotian Hu; Yang Wang; Yiqiang Zhang; Fengyu Li; Guosheng Shao; Yanlin Song


Advanced Energy Materials | 2018

Diffraction-Grated Perovskite Induced Highly Efficient Solar Cells through Nanophotonic Light Trapping

Yang Wang; Peng Wang; Xue Zhou; Chang Li; H. Li; Xiaotian Hu; Fengyu Li; Xiaoping Liu; Yanlin Song

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Yanlin Song

Chinese Academy of Sciences

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Fengyu Li

Chinese Academy of Sciences

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Meng Su

Chinese Academy of Sciences

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Yang Wang

Chinese Academy of Sciences

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Xue Zhou

Chinese Academy of Sciences

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Zhandong Huang

Chinese Academy of Sciences

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Pengwei Li

Chinese Academy of Sciences

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Wanjie Ren

Chinese Academy of Sciences

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Qi Pan

Chinese Academy of Sciences

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