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20篇 您的检索式:作者名="Mihis"
    题名 作者 年代 出处 被引量
1Role of knowledge management within inno-vation and performance 显示文摘Ramirez Antonio Mihi Vasauskaite Jovita KumpikaiteVilmante 2012Economics And Manage-ment2012,17,1:1
2A Current Global View of Environmental and Occupational Cancers显示文摘MIHI YANG 2011Journal of Environmental Science and Health Part C2011,,3:1
3Assessing the situation factors and impulsive buying behavior:Market segmention approach显示文摘Mirela Mihi?Ivana Kursan 0,,15:1
4Porous one-dimensional photonic crystals improve the power-conversion efficiency of dye- sensitized solar cells显示文摘Colodrero S Mihi A Hiiggman L 2009Adv Mater2009,21,7:1
5Synthesis and structure of new,3,3,9,9-telrasubstituted,2,4,8,10-tetraoxaspiro[5,5]undecane derivatives显示文摘Mihis A Condamine E Bogdan E Terec A Kurtain T Grosu I 0,,:1
6Improving organisational performance through?reverse logistics显示文摘Antonio Mihi Ramírez Víctor Jesús García Morales 2013Journal of the Operational Research Society2013,,6:1
7Remarks on Voherra equations in banach spaces显示文摘MIHI K 1997Comm korean Mathsoc1997,12,4:1
8Measuring vulnerability to de- pression:The Serbian scrambled sentences test-SSST显示文摘NOVOVI Z MIHI L BIRO M 2014Psihologija2014,47,1:1
9Origin of Light-Harvesting Enhancement in Colloidal-Photonic-C~ystal-Based Dye-Sensitized Solar Cells 显示文摘Mihi A Miguez H 2005Journal of Physical Chemistry B2005,109,15:1
10The prevalence of neurocranium injury in children in Brod-Posavina County 显示文摘Mihi J Rotim K Marciki M 2012Acta Clin Croat2012,51,4:1
11Oriented colloidal-crystal thin films by spin-coating microspheres dispersed in volatile media显示文摘Mihi A Ocafla M Miguez H 2006Adv Mater2006,18,17:1
12Origin of light-harvesting enhancement in colloidal-photonic-crystal-based dye-sensitized solar cells显示文摘MIHI A MIGUEZ H 2005J Phys Chem B2005,109,15:1
13Full spectrum enhancement of the light harvesting efficiency of dye sensitized solar calls by including colloidal photonic crystal multilayers显示文摘Mihi A Lopez-Alearaz F J Miguez H 2006Applied Physics Letters2006,88,19:1
14Summarization by logic segmentation and text entailment显示文摘Tatar D Tamaianu-Morita E Mihis A 2008Advances in Natural Language Processing and Applications2008,,:1
15Epidemiology,treatment and chemoprevention in colorectal cancer 显示文摘Rougier P Mihy E 2003Ann Oncol2003,14,2:1
16显示文摘Mihi A Miguez H 2005J Phys Chem B2005,109,15:1
17Radiative lifetime modification of LaF3:Nd nanoparticles embedded in 3D silicon photonic crystals显示文摘Ning H L Mihi A Geddes J B 0,,23:1
18Biological monitoring of bisphenol A in a Korean population 显示文摘YANG Mihi KIM sooyoung LEE Summa 2003Biochem Biaphys Res Commun2003,312,2:1
19Prediction of DNA sequences using adaptative neuro-fuzzy inference system显示文摘Assia Mihi Nourredine Boucenna Kheir Benmahammmed 2018International Journal of Biomathematics2018,11,4:0
20Templated Colloidal Self-Assembly for Lattice Plasmon Engineering显示文摘CONSPECTUS:Over the past 30 years,the engineering of plasmonic resonances at the nanoscale has progressed dramatically,with important contributions in a variety of different fields,including chemistry,physics,biology,engineering,and medicine.However,heavy optical losses related to the use of noble metals for the fabrication of plasmonic structures hindered their application in various settings.Recently,an answer to these long-lasting issues emerged in the use of lattice plasmon resonances(LPRs,also called surface lattice resonances),bringing new excitement in the field of plasmonics.Specifically,the organization of plasmonic nanoparticles into ordered arrays enables far-field coupling of the scattered light exploiting the diffraction modes of the array,generating plasmonic resonances with bandwidths as narrow as a few nanometers,corresponding to an increase of over 10-fold in the quality factors compared to localized plasmon resonances.As such,LPRs offer new opportunities to harness light−matter interactions at the nanoscale,while generating renewed interest in the self-assembly of colloidal metal nanoparticles,as a scalable approach to the preparation of such plasmonic arrays.Templated self-assembly emerged as one of the most versatile approaches,being compatible with soft-lithographic techniques such as nanoimprint lithography and amenable to a variety of materials,colloids,and solvents.Templated self-assembly additionally allows the preparation of arrays where the repeating units are composed of multiple self-assembled nanoparticles(i.e.,plasmonic clusters).In this system,near-field coupling can be finely tuned,thereby showing promising results in biosensing,catalysis,or plasmonic heating.In this Account,we review the preparation of ordered arrays of clusters of plasmonic nanoparticles.We present various aspects involved in the templated self-assembly of colloidal nanoparticles,with the aim of achieving at the same time close-packed structures within each cavity of the template,and uniform deposition over a large area.We then analyze the optical properties of the prepared substrates.The preparation of hierarchical structures and the possibility of tuning both the internal structure of the cluster and their organization into arrays with different lattice parameters enable control over both near-field and far-field plasmonic coupling.This unique feature of such substrates makes it possible to exploit the interplay between these two types of coupling,for the preparation of versatile functional substrates,expanding the possibilities for the integration of plasmonic arrays into functional devices for various applications.A well-established example is their use for surface-enhanced Raman scattering.On the other hand,optimization of far-field coupling provides access to plasmonic cavities for lasing or refractive index sensing.Despite two decades of fervid scientific research,the preparation and engineering of plasmonic arrays remains a relevant topic,and many directions remain largely unexplored.We conclude with a collection of perspectives and challenges that we find particularly stimulating toward future developments of the field.Leonardo Scarabelli David Vila-Liarte Agustín Mihi Luis M.Liz-Marzán 2021Accounts of Materials Research2021,2,9:0
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