Temperature Quenching and Fluorescence Depolarization of Carbon Nanodots Obtained via Paraffin Pyrolysis
- Authors: Starukhin A.N.1, Nelson D.K.1, Kurdyukov D.A.1, Eurov D.A.1, Golubev V.G.1
- 
							Affiliations: 
							- Ioffe Institute
 
- Issue: Vol 60, No 12 (2018)
- Pages: 2565-2570
- Section: Optical Properties
- URL: https://journal-vniispk.ru/1063-7834/article/view/204587
- DOI: https://doi.org/10.1134/S1063783418120284
- ID: 204587
Cite item
Abstract
A temperature effect on fluorescence intensity and polarization of a colloidal system of carbon nanodots in glycerol under linearly polarized pumping conditions is studied. Nanodots are obtained via pyrolysis of paraffin in nanopores of a mesoporous silica. An increase in temperature leads to quenching of nanodots fluorescence, and activation energy of the quenching process is assessed. An experimental relationship between the linear fluorescence polarization and temperature is described by the Levshin–Perrin equation, which takes into account the rotational diffusion of luminescent particles (fluorophores) in a liquid matrix. The size of fluorophores is noticeably smaller than that of carbon nanodots according to the Levshin–Perrin model. A difference between the dimensions of the fluorophore and the nanodot indicates that the small atomic groups responsible for luminescence of the nanodot possess high segmental mobility.
About the authors
A. N. Starukhin
Ioffe Institute
							Author for correspondence.
							Email: a.starukhin@mail.ioffe.ru
				                					                																			                												                	Russian Federation, 							St. Petersburg						
D. K. Nelson
Ioffe Institute
														Email: a.starukhin@mail.ioffe.ru
				                					                																			                												                	Russian Federation, 							St. Petersburg						
D. A. Kurdyukov
Ioffe Institute
														Email: a.starukhin@mail.ioffe.ru
				                					                																			                												                	Russian Federation, 							St. Petersburg						
D. A. Eurov
Ioffe Institute
														Email: a.starukhin@mail.ioffe.ru
				                					                																			                												                	Russian Federation, 							St. Petersburg						
V. G. Golubev
Ioffe Institute
														Email: a.starukhin@mail.ioffe.ru
				                					                																			                												                	Russian Federation, 							St. Petersburg						
Supplementary files
 
				
			 
					 
						 
						 
						 
						 
				 
  
  
  
  
  Email this article
			Email this article  Open Access
		                                Open Access Access granted
						Access granted Subscription Access
		                                		                                        Subscription Access
		                                					