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Dive into the research topics where Junhong Jia is active.

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Featured researches published by Junhong Jia.


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2003

A comparative investigation of the friction and wear behavior of polyimide composites under dry sliding and water-lubricated condition

Junhong Jia; Huidi Zhou; Shiqiu Gao; Jianmin Chen

The friction and wear behavior of high performance polyimide (PI) and its composites reinforced with short cut carbon fiber and solid lubricants such as graphite, MoS2 and polytetrafluoroethylene (PTFE) was comparatively evaluated under dry sliding and water-lubricated condition, aiming at selecting matching materials for the pumps of pure water power transmission. The wear mechanisms of the composites under the two different sliding conditions were also comparatively discussed, based on scanning electron microscopic examination of the worn composite and steel counterpart surfaces. As the results, the incorporation of solid lubricants and carbon fiber in PI contributed to improve the friction and wear behavior considerably. PI-based composites sliding against stainless steel register lower friction coefficients and wear rates under water-lubricated condition than under dry sliding. The difference in the wear rates of the composites becomes margined under water lubrication, owing to the boundary lubrication effect of the water absorption layer, though the transfer of PI and its composites was considerably hindered in this case. PI and its composites are characterized by plastic deformation, micro cracking, and spalling under both dry- and water-lubricated sliding. Such plastic deformation, micro cracking, and spalling is significantly abated under water-lubricated condition. This accounted for the better friction and wear behavior of the composites under water-lubricated condition.


Journal of Colloid and Interface Science | 2011

In situ growth of CuS thin films on functionalized self-assembled monolayers using chemical bath deposition

Yongjuan Lu; Xu Meng; Gewen Yi; Junhong Jia

Nano-structured CuS thin films were deposited on the functionalized -NH(2)-terminated self-assembled monolayers (SAMs) surface by chemical bath deposition (CBD). The deposition mechanism of CuS on the -NH(2)-terminated group was systematically investigated using field emission scanning electron microscope (FESEM), X-ray photoelectron spectroscope (XPS), UV-vis absorption. The optical, electrical and photoelectrochemical performance of CuS thin films incorporating with the X-ray diffraction (XRD) analysis confirmed the nanocrystalline nature of CuS with hexagonal crystal structure and also revealed that CuS thin film is a p-type semiconductor with high electrical conductivity (12.3Ω/□). The functionalized SAMs terminal group plays a key role in the deposition of CuS thin films. The growth of CuS on the varying SAMs surface shows different deposition mechanisms. On -NH(2)-terminated surfaces, a combination of ion-by-ion growth and cluster-by-cluster deposition can interpret the observed behavior. On -OH- and -CH(3)-terminated surfaces, the dominant growth mechanism on the surface is cluster-by-cluster deposition in the solution. According to this principle, the patterned CuS microarrays with different feature sizes were successfully deposited on -NH(2)-terminated SAMs regions of -NH(2)/-CH(3) patterned SAMs surface.


CrystEngComm | 2014

Synthesis of Cu3BiS3 nanosheet films on TiO2 nanorod arrays by a solvothermal route and their photoelectrochemical characteristics

Jianbo Yin; Junhong Jia

This paper presents an investigation on the synthesis and characterization of Cu3BiS3 nanosheet films on a TiO2/FTO substrate by a solvothermal route and the photoelectrochemical characteristics of the Cu3BiS3/TiO2 composite films are demonstrated as well. The results show that Cu3BiS3 nanosheets with an average thickness of 30 nm were successfully synthesized on the surface of TiO2 nanorod arrays. The photoelectric properties of the Cu3BiS3/TiO2 composite film indicate that the fill factor of the film photoelectrode is 60.8%, and the energy conversion efficiency is 1.281%, which is higher than that of a bare TiO2 nanorod array photoelectrode.


CrystEngComm | 2012

Selective growth and photoelectrochemical properties of Bi2S3 thin films on functionalized self-assembled monolayers

Yongjuan Lu; Junhong Jia; Gewen Yi

A convenient method for preparing highly crystalline Bi2S3 thin films by combining chemical bath deposition with self-assembled monolayers (SAMs) is described. The surface morphology, structure and composition of the resultant Bi2S3 thin films were characterized by XPS, XRD and FESEM, respectively. The optical and photoelectrochemical properties of as-prepared Bi2S3 thin films with different reaction times were investigated by UV-vis absorption and photocurrent action spectroscopy. It was demonstrated that these properties were dependent on the film thickness which increased with the deposition time. According to the different deposition mechanisms on the NH2 and CH3 terminal groups, patterned Bi2S3 microarrays with different feature sizes (50, 130, 250 μm) were successfully deposited on –NH2-terminated SAMs regions of –NH2/–CH3 patterned SAMs surfaces. Clearly, with a decrease in feature size, the absorption intensity and photocurrent density of the patterned Bi2S3 thin film increased, which was due to the increased Bi2S3 surface area as well as the increased optical path length within the patterned Bi2S3 thin film, resulting from multiple reflection of incident light. The photocurrent density of the patterned thin film for the 50 μm-size feature exhibited an almost 9 times larger photocurrent density than a similar thin film without patterning. This work indicates that patterned Bi2S3 thin films are attractive systems for surface tailoring and also provide a novel approach to effectively control the photoelectrochemical properties of nanostructured Bi2S3 thin films with promising applications in microsystem devices for solar energy conversion.


RSC Advances | 2015

Fabrication and photoelectrochemical characteristics of CuInS2 and PbS quantum dot co-sensitized TiO2 nanorod photoelectrodes

Minmin Han; Junhong Jia; Limin Yu; Gewen Yi

A cascade structured PbS/CuInS2/TiO2 photoelectrode with a co-sensitizer of CuInS2 and PbS quantum dots (QDs) deposited on TiO2 nanorods is fabricated via a successive ionic layer absorption and reaction (SILAR) method. The effects of SILAR cycle numbers of n and m for CuInS2 QDs and PbS QDs, as well as the influence of the co-sensitization of QDs on the energy conversion efficiency, are discussed. The results show that the deposition of co-sensitizer PbS QDs on CuInS2 QDs–TiO2 nanorod array photoelectrodes presents a complementary effect in light absorption. The performance of quantum dot sensitized solar cells (QDSSCs) shows dominant dependence on the value of SILAR cycles n and m. The enhanced performance of QDSSCs with the cascade structure, PbS/CuInS2/TiO2 photoelectrode, is attributed to the Fermi energy level alignment of the QDs co-sensitizer. An energy conversion efficiency of 4.11% is achieved using the PbS/CuInS2/TiO2 photoelectrodes under one sun illumination (AM 1.5, 100 mW cm−2).


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2001

Investigation of the tribological behavior of an aluminum alloy with embedded materials

Huidi Zhou; Jianmin Chen; Junhong Jia

Aluminum alloy-based (LY-12) composites were made by embedding pins of bearing steel, plain carbon steel, brass, copper, graphite, and polytetra-fluoroethylene (PTFE). The surface area ratio of the embedded phase was 39.1%. The tribological behavior of the embedded composites was evaluated under dry friction and lubricated with a bonded solid lubricating film outer-layer on a reciprocating friction and wear tester at ambient conditions. The morphologies of the worn surfaces and of the transfer films on the counterpart surfaces were observed with a scanning electron microscope. The tribological behavior of the embedded composites was highly dependent on the hardness of the embedding materials. Friction and wear of Al alloy can be drastically reduced by proper embedding, but embedding with solid lubricants such as graphite and PTFE does not help. Friction and wear behaviors were different in sliding against Al and plain carbon steel. The observation of the worn composite surfaces by SEM indicates that wear of Al-based composite blocks is characterized by plowing, severe adhesion, and plastic deformation.


RSC Advances | 2016

Photoelectrochemical properties of PbS quantum dot sensitized TiO2 nanorods photoelectrodes

Limin Yu; Junhong Jia; Gewen Yi; Minmin Han

The semiconductor PbS quantum dots (QDs) were synthesized on TiO2 nanorods (NRs) via a successive ionic layer adsorption and reaction (SILAR) method. The deposition of PbS QDs on the TiO2 NRs could enhance the ability of light absorption and improve the power conversion efficiency of the solar cell. The morphological features, crystal structures, optical properties, photoelectrochemical performances, electron transfer at the TiO2-QDs/electrolyte interface and electron lifetime of the obtained PbS QDs/TiO2 NRs photoelectrodes were characterized and discussed in detail. The results demonstrated that the photoelectrochemical performance of PbS QDs/TiO2 NRs depends on the value of the SILAR cycle number. The highest photoelectric conversion efficiency of 0.77% is achieved at the SILAR cycle number n = 4 under one sun illumination (AM 1.5, 100 mW cm−2). The enlarged absorption edges to the visible region and the effective separation of photogenerated electron–hole pairs at the PbS QDs-TiO2 NRs interface are attributed to the promotion of the power conversion efficiency.


Journal of Colloid and Interface Science | 2009

Fabrication and characterization of positive and negative copper sulfide micropatterns on self-assembled monolayers

Yongjuan Lu; Shan Liang; Miao Chen; Junhong Jia

Positive and negative micropatterned copper sulfide thin films were successfully fabricated through chemical bath deposition methods. The thin films were deposited on patterned Si substrates with two different self-assembled monolayers (SAMs), i.e., NH(2)/CH(3) and NH(2)/OH terminated silane, respectively. Under an optimal depositing condition, the copper sulfide thin films were selectively deposited on NH(2) regions. The resultant Cu(2)S crystal films, in positive and negative circle patterns, respectively, were verified by SEM, XPS, XRD spectra. UV-vis spectrum analysis demonstrated that the prepared Cu(2)S films exhibited high optical transmission in the visible light regions (vis) and near-infrared region (NIR), and a low band gap of 2.48 eV.


CrystEngComm | 2016

3D Bi2S3 salix leaf-like nanosheet/TiO2 nanorod branched heterostructure arrays for improving photoelectrochemical properties

Yanling Wan; Minmin Han; Limin Yu; Gewen Yi; Junhong Jia

We firstly fabricated a peculiar 3D structure of Bi2S3 salix leaf-like nanosheet/TiO2 nanorod branched heterostructure arrays by a convenient hydrothermal method and discussed their mechanism of improving photoelectrochemical cell (PEC) properties. The salix leaf-like Bi2S3 nanosheets (NSs) were grown on TiO2 nanorod arrays through controlling the molar ratio of EDTA-Na2/Bi3+ and the reaction time. The morphology, crystal structure, microstructure and optical performance of the 3D Bi2S3 NS/TiO2 NRs at different reaction times were investigated. The results show that the branched heterostructure of 3D Bi2S3 NS/TiO2 NR arrays exhibits enhanced photocurrent density and optical absorption, which were attributed to the larger Bi2S3 surface area, as well as a direct electron path within the salix leaf-like Bi2S3 NS and TiO2 NR heterojunctions, resulting from more excitation sites of incident light. The photocurrent density of the 3D Bi2S3 NS/TiO2 NR arrays was almost 9 times greater than that of pristine TiO2 without a branching structure. The results of the present work demonstrate that fabrication of the branched Bi2S3 NS/TiO2 NR heterogeneous structure is a significant fabrication technology with great promise in PECs.


ACS Applied Materials & Interfaces | 2010

Fabrication and photoelectrochemical characteristics of the patterned CdS microarrays on indium tin oxide substrates.

Xu Meng; Yongjuan Lu; Baoping Yang; Gewen Yi; Junhong Jia

In an effort to investigate the extraordinary photoelectrochemical characteristics of nanostructured CdS thin films in promising photovoltaic device applications, the patterned CdS microarrays with different feature sizes (50, 130, and 250 μm in diameter) were successfully fabricated on indium tin oxide (ITO) glass substrates using the chemical bath deposition method. The ultraviolet lithography process was employed for fabricating patterned octadecyltrichlorosilane (OTS) self-assembled monolayers (SAMs) as the functional organic thin layer template. The results show that the regular and compact patterned CdS microarrays had been deposited onto ITO glass surfaces, with clear edges demarcating the boundaries between the patterned CdS region and substrate under an optimal depositing condition. The microarrays consisted of pure nanocrystalline CdS with average crystallite size of about 10.7 nm. The photocurrent response and the optical adsorption of the patterned CdS microarray thin films increased with the decrease of the feature size, which was due to the increased CdS surface area, as well as the increased optical path length within the patterned CdS thin films, resulting from multiple reflection of incident light. The resistivity values increase with the increase of feature size, due to the increase of the relative amount of gaps between CdS microarrays with increasing the feature size of patterned CdS microarrays.

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Gewen Yi

Chinese Academy of Sciences

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W. Wang

Chinese Academy of Sciences

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Minmin Han

Chinese Academy of Sciences

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Yimin Gao

Xi'an Jiaotong University

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Hongjian Guo

Chinese Academy of Sciences

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Bo Li

Xi'an Jiaotong University

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Xiaoliang Zhang

Hebei University of Engineering

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Eryong Liu

Chinese Academy of Sciences

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Limin Yu

Chinese Academy of Sciences

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Yu Shan

Chinese Academy of Sciences

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