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	Author | 
	Bertoni, G.; Fabbri, F.; Villani, M.; Lazzarini, L.; Turner, S.; Van Tendeloo, G.; Calestani, D.; Gradečak, S.; Zappettini, A.; Salviati, G. | 
	
		  
		  
		  
		  
		
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	Title | 
	Nanoscale mapping of plasmon and exciton in ZnO tetrapods coupled with Au nanoparticles | 
	Type | 
	A1 Journal article | 
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	Year   | 
	2016 | 
	Publication | 
	Scientific reports | 
	Abbreviated Journal | 
	Sci Rep-Uk | 
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	Volume | 
	6 | 
	Issue | 
	6 | 
	Pages | 
	19168 | 
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	Keywords | 
	A1 Journal article; Engineering sciences. Technology; Electron microscopy for materials research (EMAT) | 
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	Abstract | 
	Metallic nanoparticles can be used to enhance optical absorption or emission in semiconductors, thanks to a strong interaction of collective excitations of free charges (plasmons) with electromagnetic fields. Herein we present the direct imaging at the nanoscale of plasmon-exciton coupling in Au/ZnO nanostructures by combining scanning transmission electron energy loss and cathodoluminescence spectroscopy and mapping. The Au nanoparticles (~30 nm in diameter) are grown in-situ on ZnO nanotetrapods by means of a photochemical process without the need of binding agents or capping molecules. This results in clean interfaces, enabling to prove the occurrence of the plasmon-exciton coupling and the straightforward mapping of its spatial localization. Interestingly, the Au plasmon resonance is localized at the Au/vacuum interface, rather than presenting an isotropic distribution around the nanoparticle. On the contrary, a strong localization of the ZnO excitons, has been observed inside the Au nanoparticle, revealing the existence of the plasmon-exciton coupling, as also confirmed by numerical simulations. | 
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	Wos | 
	000368111900001 | 
	Publication Date | 
	2016-01-12 | 
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	ISSN | 
	2045-2322 | 
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	Additional Links | 
	UA library record; WoS full record; WoS citing articles | 
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	Impact Factor | 
	4.259 | 
	Times cited | 
	15 | 
	Open Access | 
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	Notes | 
	The research leading to these results has received funding from the European Union FP7 Grant Agreement n. 265073 ITN-Nanowiring, and FP7 Grant Agreement n. 312483 ESTEEM2 for Integrated Infrastructure Initiative – I3. S.T. gratefully acknowledges the FWO Vlaanderen. G.V.T. acknowledges the European Research Council (ERC grant N°246791 – COUNTATOMS). The authors thank Alessandra Catellani and Arrigo Calzolari for helpful discussions.; Esteem2_jra3 | 
	Approved | 
	Most recent IF: 4.259 | 
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	Call Number | 
	c:irua:130406 c:irua:130406 | 
	Serial | 
	3999 | 
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