Hengwei Qiu
Shandong Normal University
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Publication
Featured researches published by Hengwei Qiu.
ACS Applied Materials & Interfaces | 2015
Shicai Xu; Baoyuan Man; Shouzhen Jiang; Jihua Wang; Jie Wei; S.C. Xu; Hanping Liu; Shoubao Gao; Huilan Liu; Z. Li; Hongsheng Li; Hengwei Qiu
We present a graphene/Cu nanoparticle hybrids (G/CuNPs) system as a surface-enhanced Raman scattering (SERS) substrate for adenosine detection. The Cu nanoparticles wrapped by a monolayer graphene shell were directly synthesized on flat quartz by chemical vapor deposition in a mixture of methane and hydrogen. The G/CuNPs showed an excellent SERS enhancement activity for adenosine. The minimum detected concentration of the adenosine in serum was demonstrated as low as 5 nM, and the calibration curve showed a good linear response from 5 to 500 nM. The capability of SERS detection of adenosine in real normal human urine samples based on G/CuNPs was also investigated and the characteristic peaks of adenosine were still recognizable. The reproducible and the ultrasensitive enhanced Raman signals could be due to the presence of an ultrathin graphene layer. The graphene shell was able to enrich and fix the adenosine molecules, which could also efficiently maintain chemical and optical stability of G/CuNPs. Based on the G/CuNPs system, the ultrasensitive SERS detection of adenosine in varied matrices was expected for the practical applications in medicine and biotechnology.
ChemPhysChem | 2015
Hengwei Qiu; Yanyan Huo; Zhen Li; Chao Zhang; Peixi Chen; Shouzhen Jiang; Shicai Xu; Yong Ma; Shuyun Wang; Hongsheng Li
Graphene shells with a controllable number of layers were directly synthesized on Cu nanoparticles (CuNPs) by chemical vapor deposition (CVD) to fabricate a graphene-encapsulated CuNPs (G/CuNPs) hybrid system for surface-enhanced Raman scattering (SERS). The enhanced Raman spectra of adenosine and rhodamine 6G (R6G) showed that the G/CuNPs hybrid system can strongly suppress background fluorescence and increase signal-to-noise ratio. In four different types of SERS systems, the G/CuNPs hybrid system exhibits more efficient SERS than a transferred graphene/CuNPs hybrid system and pure CuNPs and graphene substrates. The minimum detectable concentrations of adenosine and R6G by the G/CuNPs hybrid system can be as low as 10(-8) and 10(-10) M, respectively. The excellent linear relationship between Raman intensity and analyte concentration can be used for molecular detection. The graphene shell can also effectively prevent surface oxidation of Cu nanoparticles after exposure to ambient air and thus endow the hybrid system with a long lifetime. This work provides a basis for the fabrication of novel SERS substrates.
RSC Advances | 2015
Hengwei Qiu; Zhen Li; Saisai Gao; Peixi Chen; Chao Zhang; Shouzhen Jiang; Shicai Xu; Cheng Yang; Hongsheng Li
In our work, we directly synthesized few layer MoS2 on a pyramid-Si substrate to fabricate a surface-enhanced Raman scattering (SERS) substrate via thermally decomposing the precursor of ammonium thiomolybdate ((NH4)2MoS4). Scanning electron microscopy (SEM), atomic force microscopy (AFM), X-ray diffraction (XRD) and Raman spectra are employed to characterize the as-grown MoS2 layers. Adenosine and cytidine were selected as the probe molecules to investigate the SERS ability of the MoS2-pyramid-Si substrate, and have shown that the MoS2-pyramid-Si substrate can prominently suppress photobleaching and fluorescence of the probe molecule. Compared with the MoS2-flat-Si substrate (MoS2 layers synthesized on flat-Si substrate), the MoS2-pyramid-Si substrate has more significant SERS ability. The minimum detected concentration of both adenosine and cytidine on the MoS2-pyramid-Si substrate can reach 10−6 M. Importantly, the linear relationship between the Raman intensity and the concentration of adenosine or cytidine can apply to the bimolecular detection. This work may provide a new opportunity for the study of the chemistry mechanism (CM) and novel SERS substrate fabrication.
CrystEngComm | 2014
Chao Zhang; M. Liu; B.Y. Man; S.Z. Jiang; Cheng Yang; C.S. Chen; D.J. Feng; D. Bi; Fuyan Liu; Hengwei Qiu; Jiaxin Zhang
Direct deposition of a uniform and high-quality Bi2Se3 thin film on a graphene film (layer controlled) is performed using a catalyst-free vapor deposition system in a Se-rich environment. The Se-rich environment is utilized to fill the Se vacancies and is beneficial to achieving the uniform chemical composition of the product. The layers of graphene can be controlled easily and precisely by the transfer times. Besides the graphene film, the morphology of the product is sensitive to the growth parameters (temperature of the substrate, growth time and gas flow). By controlling the growth parameters, we can also grow a crystal Bi2Se3 plate on the graphene/SiO2/Si substrate. Raman spectroscopy, scanning electron microscopy, transmission electron microscopy and X-ray diffraction confirm the presence of uniform and high-quality Bi2Se3.
RSC Advances | 2016
Saisai Gao; S. B. Shang; Xiaoyun Liu; Z. Li; Yingqiang Sheng; Chengcheng Zhang; Cheng Yang; Hengwei Qiu; Yanyan Huo; S.Z. Jiang
In this work, we present a novel optical fiber SERS (OF-SERS) sensor based on a sandwich structure of GO/AgNPs/rGO. Rhodamine 6G (R6G) was selected as the probe molecule to compare the SERS ability of different films composed of the bare optical fiber, GO, AgNPs, rGO/AgNPs, GO/AgNPs and GO/AgNPs/rGO. Raman spectra, scanning electron microscopy (SEM), atomic force microscopy (AFM), energy dispersive spectroscopy (EDS) and X-ray photoelectron spectroscopy (XPS) were performed to characterize the sandwich structure hybrid films. Besides, the stability of GO/AgNPs and GO/AgNPs/rGO was compared on the optical fiber end face. The OF-SERS sensor based GO/AgNPs/rGO hybrid films had stable SERS performance even when exposed to ambient conditions for a prolonged time of 30 days. This work may provide a new strategy for an efficient stable OF-SERS sensor due to its simplicity, low-cost and long-term stability.
Carbon | 2016
Cheng Yang; Chao Zhang; Yanyan Huo; Shouzhen Jiang; Hengwei Qiu; Yuanyuan Xu; Xiuhua Li; Baoyuan Man
Applied Surface Science | 2015
Chao Zhang; Baoyuan Man; S.Z. Jiang; Cheng Yang; C.S. Chen; S.C. Xu; Hengwei Qiu; Z. Li
Applied Surface Science | 2015
Xiumei Zhang; Shicai Xu; Shouzhen Jiang; Jihua Wang; Jie Wei; S.C. Xu; Shoubao Gao; Hanping Liu; Hengwei Qiu; Zhen Li; Huilan Liu; Z. Li; Hongsheng Li
Applied Surface Science | 2015
Hengwei Qiu; S.C. Xu; Peixi Chen; Saisai Gao; Z. Li; Chao Zhang; S.Z. Jiang; M. Liu; Hongsheng Li; D.J. Feng
Applied Surface Science | 2015
Hengwei Qiu; S.C. Xu; S.Z. Jiang; Z. Li; Peixi Chen; Saisai Gao; Chao Zhang; D.J. Feng