Yun-Jun Xu
University of Science and Technology of China
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Featured researches published by Yun-Jun Xu.
Advanced Materials | 2010
Yang Lu; Yang Zhao; Le Yu; Liang Dong; Ce Shi; Ming-Jun Hu; Yun-Jun Xu; Longping Wen; Shu-Hong Yu
[*] Prof. S.-H. Yu, Y. Lu, Y. Zhao, L. Dong, C. Shi, M.-J. Hu Division of Nanomaterials and Chemistry Hefei National Laboratory for Physical Sciences at the Microscale Department of Chemistry University of Science and Technology of China Hefei, Anhui 230026 (P. R. China) E-mail: [email protected] L. Yu, Prof. L.-P. Wen Hefei National Laboratory for Physical Sciences at the Microscale School of Life Sciences University of Science and Technology of China Hefei 230027 (P. R. China)
Small | 2013
Liang Dong; Duo An; Ming Gong; Yang Lu; Huai-Ling Gao; Yun-Jun Xu; Shu-Hong Yu
Upconversion luminescent hollow Y2 O3 :Yb(3+) /Er(3+) nanospheres can be synthesized by an etching-free process, which hold promising potential for applications such as drug delivery, angiography, and high-contrast cellular as well as tissue imaging, with no damage from radiation or toxicity.
Scientific Reports | 2013
Mei Feng; Yang Lu; Yuan Yang; Meng Zhang; Yun-Jun Xu; Huai-Ling Gao; Liang Dong; Wei-Ping Xu; Shu-Hong Yu
Large scale greigite with uniform dimensions has stimulated significant demands for applications such as hyperthermia, photovoltaics, medicine and cell separation, etc. However, the inhomogeneity and hydrophobicity for most of the as prepared greigite crystals has limited their applications in biomedicine. Herein, we report a green chemical method utilizing β-cyclodextrin (β-CD) and polyethylene glycol (PEG) to synthesize bioinspired greigite (Fe3S4) magnetic nanocrystals (GMNCs) with similar structure and magnetic property of magnetosome in a large scale. β-CD and PEG is responsible to control the crystal phase and morphology, as well as to bound onto the surface of nanocrystals and form polymer layers. The GMNCs exhibit a transverse relaxivity of 94.8 mM−1s−1 which is as high as iron oxide nanocrystals, and an entrapment efficiency of 58.7% for magnetic guided delivery of chemotherapeutic drug doxorubicin. Moreover, enhanced chemotherapeutic treatment of mice tumor was obtained via intravenous injection of doxorubicin loaded GMNCs.
Nature Biomedical Engineering | 2017
Yang Lu; Yun-Jun Xu; Guo-bing Zhang; Daishun Ling; Ming-quan Wang; Yong Zhou; Ya-Dong Wu; Tao Wu; Michael J. Hackett; Byung Hyo Kim; Hogeun Chang; Jonghoon Kim; Xin-Tian Hu; Liang Dong; Nohyun Lee; Fangyuan Li; Jiacai He; Li Zhang; Hui-Qin Wen; Bo Yang; Seung Hong Choi; Taeghwan Hyeon; Duo-Hong Zou
Iron-oxide-based contrast agents for magnetic resonance imaging (MRI) had been clinically approved in the United States and Europe, yet most of these nanoparticle products were discontinued owing to failures to meet rigorous clinical requirements. Significant advances have been made in the synthesis of magnetic nanoparticles and their biomedical applications, but several major challenges remain for their clinical translation, in particular large-scale and reproducible synthesis, systematic toxicity assessment, and their preclinical evaluation in MRI of large animals. Here, we report the results of a toxicity study of iron oxide nanoclusters of uniform size in large animal models, including beagle dogs and the more clinically relevant macaques. We also show that iron oxide nanoclusters can be used as T1 MRI contrast agents for high-resolution magnetic resonance angiography in beagle dogs and macaques, and that dynamic MRI enables the detection of cerebral ischaemia in these large animals. Iron oxide nanoclusters show clinical potential as next-generation MRI contrast agents.Uniform iron oxide nanoparticle clusters are highly biocompatible and can be used as contrast agents for high-resolution magnetic resonance angiography of large animals.
ACS Applied Materials & Interfaces | 2017
Hui-Qin Wen; Huang-Yong Peng; Kun Liu; Mao-Hong Bian; Yun-Jun Xu; Liang Dong; Xu Yan; Wei-Ping Xu; Wei Tao; Jilong Shen; Yang Lu; Hai-Sheng Qian
Upconversional core-shell nanostructures have gained considerable attention due to their distinct enhanced fluorescence efficiency, multifunctionality, and specific applications. Recently, we have developed a sequential growth process to fabricate unique upconversion core-shell nanoparticles. Time evolution of morphology for the NaYF4:Yb/Er@NaGdF4 nanodumbbells has been extensively investigated. An Ostwald ripening growth mechanism has been proposed to illustrate the formation of NaYF4:Yb/Er@NaGdF4 nanodumbbells. The hydrophilic NaYF4:Yb/Er@NaGdF4 core-shell nanodumbbells exhibited strong upconversion fluorescence and showed higher magnetic resonance longitudinal relaxivity (r1 = 7.81 mM-1 s-1) than commercial contrast agents (Gd-DTPA). NaYF4:Yb/Er@NaGdF4 nanodumbbells can serve as good candidates for high efficiency fluorescence and magnetic resonance imaging.
Advanced Functional Materials | 2013
Yang Lu; Li Zhang; Jing Li; Yu-De Su; Yun Liu; Yun-Jun Xu; Liang Dong; Huai-Ling Gao; Jun Lin; Na Man; Pengfei Wei; Wei-Ping Xu; Shu-Hong Yu; Longping Wen
Advanced Functional Materials | 2010
Yang Lu; Ce Shi; Ming-Jun Hu; Yun-Jun Xu; Le Yu; Longping Wen; Yang Zhao; Wei-Ping Xu; Shu-Hong Yu
Advanced Functional Materials | 2013
Liang Dong; Yun Liu; Yang Lu; Li Zhang; Na Man; Liang Cao; Kai Ma; Duo An; Jun Lin; Yun-Jun Xu; Wei-Ping Xu; Wen-Bin Wu; Shu-Hong Yu; Longping Wen
Nanoscale | 2016
Yun-Jun Xu; Jun Lin; Yang Lu; Sheng-Liang Zhong; Lei Wang; Liang Dong; Ya-Dong Wu; Jun Peng; Li Zhang; Xiao-Feng Pan; Wei Zhou; Yang Zhao; Longping Wen; Shu-Hong Yu
Nanoscale | 2016
Yun-Jun Xu; Liang Dong; Yang Lu; Le-Cheng Zhang; Duo An; Huai-Ling Gao; Dong-Mei Yang; Wen Hu; Cong Sui; Wei-Ping Xu; Shu-Hong Yu