DocumentCode :
1883013
Title :
PHLAME: A physical layer aware MAC protocol for electromagnetic nanonetworks
Author :
Pujol, Joan Capdevila ; Jornet, Josep Miquel ; Pareta, Josep Sole
Author_Institution :
NaNoNetworking Center in Catalunya (N3Cat), Univ. Politec. de Catalunya, Barcelona, Spain
fYear :
2011
fDate :
10-15 April 2011
Firstpage :
431
Lastpage :
436
Abstract :
Nanotechnology is enabling the development of integrated devices just a few hundred nanometers in size. Communication among these nano-devices will boost the applications of nanotechnology in the biomedical, environmental and military fields. Within the communication alternatives at the nanoscale, the state of the art in nanomaterial research points to the Terahertz band (0.1-10 THz) as the frequency range of operation of graphene-based electromagnetic (EM) nano-transceivers. This frequency band supports very large transmission bit-rates and enables simple communication mechanisms suited to the limited capabilities of nano-devices. Due to an expectedly very large number of nano-devices sharing the same channel, it is necessary to develop new Medium Access Control (MAC) protocols which will be able to capture the peculiarities of nanonetworks in the Terahertz band. In this paper, PHLAME, a physical layer aware MAC protocol for electromagnetic nanonetworks, is introduced. This protocol is built on top of a novel communication scheme based on the exchange of femtosecond-long pulses spread in time, and exploits the benefits of novel low-weight channel coding schemes. In the PHLAME protocol, the transmitting and receiving nano-devices jointly select the communication parameters that minimize the interference in the nanonetwork and maximize the probability of successfully decoding the received information. The performance of the protocol is analyzed in terms of energy consumption, delay and achievable throughput, by taking also into account the energy limitations of nano-devices. The results show that, despite its simplicity, the PHLAME protocol is able to support densely populated nanonetworks by exploiting the peculiarities of the Terahertz band.
Keywords :
access protocols; channel coding; decoding; electromagnetic devices; graphene; interference suppression; probability; radiofrequency interference; transceivers; PHLAME protocol; Terahertz band; biomedical fields; decoding probability; electromagnetic nanonetworks; environmental fields; femtosecond-long pulse; frequency 0.1 THz to 10 THz; graphene-based electromagnetic nanotransceivers; integrated device development; interference minimization; low-weight channel coding schemes; medium access control protocols; military fields; nanodevices; nanomaterial research; nanotechnology; physical layer aware MAC protocol; transmission bit-rates; Delay; Energy consumption; Media Access Protocol; Nanoscale devices; Receivers; Transmitters; Graphene; Medium Access Control; Nanonetworks; Pulse-based Communications; Terahertz Band;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Communications Workshops (INFOCOM WKSHPS), 2011 IEEE Conference on
Conference_Location :
Shanghai
Print_ISBN :
978-1-4577-0249-5
Electronic_ISBN :
978-1-4577-0248-8
Type :
conf
DOI :
10.1109/INFCOMW.2011.5928852
Filename :
5928852
Link To Document :
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