NOSCE MEMORIAS: Dispositivi di memoria basati su molecole organiche
Responsabile:
Ricerca UE FP6
Ruolo DEIB: Partecipante
Data inizio: 01/01/2004
Durata: 39 mesi
Sommario
Organic materials are attractive for memory applications: they can be ideally scaled down to molecular size, they are processed at a temperature close to ambient temperature, they can be deposited in layered structures on a large number of substrates, silicon included. Therefore organic materials address correctly the issues of next generation memory devices, that is minimum size of the cell and 3-dimentional stacking for maximum density, without forgetting the lower cost of fabrication and the ecological advantage of a very low energetic budget during production. These potentialities have since long solicited the investigation of memory effects in organic materials, leading to interesting results on both molecular and bulk bistable devices.
The research at DEI (initiated with the European Community project Nosce Memorias IST-2002-2.3.1.1) is focused on a new class of organic memory devices based on phenol substituted bithiophenes whose conductivity can be switched between two stable values upon electric pulses.
A simple two terminal memory device has been made that can store information in a non-volatile way by means of two well distinct conductance states that can be programmed and read electronically.
The devices have shown to operate both in air and in vacuum with low programming voltages of about 4V, to retain the information for largely more than 48 hours in each state and to sustain multiple write&erase cycles in excess to 200 if pristine and in excess to 1000 when blended in a matrix of polystirene, without degradation in the active material volume as testified by infrared spectroscopy.
Although questions still remains on the basic switching mechanisms and on the role of the electrodes, organic-based devices have proved to merit large attention toward the realisation of scaled memory cells.
The research at DEI (initiated with the European Community project Nosce Memorias IST-2002-2.3.1.1) is focused on a new class of organic memory devices based on phenol substituted bithiophenes whose conductivity can be switched between two stable values upon electric pulses.
A simple two terminal memory device has been made that can store information in a non-volatile way by means of two well distinct conductance states that can be programmed and read electronically.
The devices have shown to operate both in air and in vacuum with low programming voltages of about 4V, to retain the information for largely more than 48 hours in each state and to sustain multiple write&erase cycles in excess to 200 if pristine and in excess to 1000 when blended in a matrix of polystirene, without degradation in the active material volume as testified by infrared spectroscopy.
Although questions still remains on the basic switching mechanisms and on the role of the electrodes, organic-based devices have proved to merit large attention toward the realisation of scaled memory cells.
Risultati del progetto ed eventuali pubblicazioni scientifiche/brevetti
- M. Caironi, D. Natali, M. Sampietro, C. Bertarelli, A. Bianco, A. Dundulachi, E. Canesi, G. Zerbi “Organic memory device based on 3,3’-bis-(3,5-di-tert-butyl-4-methoxy phenyl)-2,2’-bithiophene with high endurance and robustness to ambient air operation” Appl. Phys. Letters, 89, 243519 (2006)
- M. Caironi, D. Natali, M. Sampietro, C. Bertarelli, A. Bianco, E. Canesi, G. Zerbi “Conductance switching behaviour of a phenol substituted bithiophene memory device” Proceedings of the 2nd Int. Conf. on Memory Technology and design – ICMTD 2007, Giens (France) May 7-10th, (2007) 131-134.
Related papers on organic semiconductor devices:
- D. Natali, M. Caironi, M. Sampietro, A.P. Meacham, S.J. Vickers and M.D.Ward; Optical Materials Vol 28, p. 1362-1365 (2006)
- W. Porzio, S. Destri, M. Pasini, A. Bolognesi, A. Angiulli, P. di Gianvincenzo, D. Natali, M. Sampietro, M. Caironi, L. Fumagalli, S. Ferrari, E. Peron, F. Perissinotti; Materials Science and Engineering C26, 996-1001 (2006)
- M. Carla Aragoni, Massimiliano Arca, Francesco A. Devillanova, Francesco Isaia, Vito Lippolis, Annalisa Mancini, Luca Pala, Gaetano Verani, Tiziano Agostinelli, Mario Caironi, Dario Natali and Marco Sampietro; Inorg. Chem. Commun. 10 (2007) 191-194
- D. Natali, L. Fumagalli and M. Sampietro; Journal of Applied Physics 101, 014501 (2007)
- M. Caironi, T. Agostinelli, D. Natali, and M. Sampietro, R. Cugola, M. Catellani, S. Luzzati; Journal of Applied Physics.,102, 024503 (2007)
- S. Ferrari, F. Perissinotti, E. Peron, L. Fumagalli, D. Natali and M. Sampietro, Organic Electronics 8 (2007) 407-414
- T. Agostinelli, M. Caironi, D. Natali, and M. Sampietro, P. Biagioni, M. Finazzi, and L. Duò, J. Appl. Phys. 101, 114504 (2007)