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    题名 作者 年代 出处 被引量
1Flower-like CuO hierarchical nanostructures: synthesis, characterization, and property显示文摘基于 Nanoflake 的象花的 CuO nanostructures 通过热分解被综合了[Cu (NH3 ) 4 ] 没有在低温度的任何表面活化剂和催化剂的 2+ 答案。产品被 X 光检查衍射(XRD ) 和地排放扫描电子显微镜学(FESEM ) 描绘。可能的形成过程基于聚集再结晶机制被建议。最后,获得的象花的 CuO 层次 nanostructures 在实验被用作光催化剂。这被发现 asprepared 玫瑰精 B 的 photocatalytic 分解上的象花的 CuO 层次 nanostructures 展览上级 photocatalytic 性质由于他们的层次结构。Jiarui HUANG Feng TANG Cuiping GU Chengcheng SHI Muheng ZHAI 2012Frontiers of Optoelectronics2012,5,4:2
2Fabrication and gas-sensing properties of hierarchically porous ZnO architectures显示文摘Jiarui Huang Youjie Wu Cuiping Gu Muheng Zhai Yufeng Sun Jinhuai Liu 2010Sensors & Actuators: B Chemical2010,,1:1
3Preparation of porous flower-like ZnO nanostructures and their gas-sensing property显示文摘Cuiping Gu Jiarui Huang Youjie Wu Muheng Zhai Yufeng Sun Jinhuai Liu 2011Journal of Alloys and Compounds2011,,:1
4inMTSCCA:An Integrated Multi-task Sparse Canonical Correlation Analysis for Multi-omic Brain Imaging Genetics显示文摘Identifying genetic risk factors for Alzheimer's disease(AD)is an important research topic.To date,different endophenotypes,such as imaging-derived endophenotypes and proteomic expression-derived endophenotypes,have shown the great value in uncovering risk genes compared to case-control studies.Biologically,a co-varying pattern of different omics-derived endophenotypes could result from the shared genetic basis.However,existing methods mainly focus on the effect of endophenotypes alone;the effect of cross-endophenotype(CEP)associations remains largely unexploited.In this study,we used both endophenotypes and their CEP associations of multi-omic data to identify genetic risk factors,and proposed two integrated multi-task sparse canonical correlation analysis(inMTSCCA)methods,i.e.,pairwise endophenotype correlationguided MTSCCA(pcMTSCCA)and high-order endophenotype correlation-guided MTSCCA(hocMTSCCA).pcMTSCCA employed pairwise correlations between magnetic resonance imaging(MRI)-derived,plasma-derived,and cerebrospinal fluid(CSF)-derived endophenotypes as an additional penalty.hocMTSCCA used high-order correlations among these multi-omic data for regularization.To figure out genetic risk factors at individual and group levels,as well as altered endophenotypic markers,we introduced sparsity-inducing penalties for both models.We compared pcMTSCCA and hocMTSCCA with three related methods on both simulation and real(consisting of neuroimaging data,proteomic analytes,and genetic data)datasets.The results showed that our methods obtained better or comparable canonical correlation coefficients(CCCs)and better feature subsets than benchmarks.Most importantly,the identified genetic loci and heterogeneous endophenotypic markers showed high relevance.Therefore,jointly using multi-omic endophenotypes and their CEP associations is promising to reveal genetic risk factors.Lei Du Jin Zhang Ying Zhao Muheng Shang Lei Guo Junwei Han 2023Genomics, Proteomics & Bioinformatics2023,21,2:0
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