TY - JOUR
T1 - Ultra-conformable Organic Field-Effect Transistors and circuits for epidermal electronic applications
AU - Lai, Stefano
AU - Zucca, Alessandra
AU - Cosseddu, Piero
AU - Greco, Francesco
AU - Mattoli, Virgilio
AU - Bonfiglio, Annalisa
PY - 2017/7/1
Y1 - 2017/7/1
N2 - In this work we report the development of electronic circuits based on low voltage Organic Field-Effect Transistors (OFETs), entirely fabricated on polymer nanosheets acting as sub-micrometric substrates. The overall thickness of the proposed circuits (including the substrate, a 400 nm-thick Parylene C nanosheet) is only 600 nm, thus making them highly flexible, ultra-conformable and light-weighted. A complete characterization of the fabricated devices is reported. Mechanical performances of the nanosheets are thoroughly discussed. Full swing complementary inverters fabricated on same substrate show low noise margins and gains up to 10. Thanks to a carefully designed self-aligned structure, these devices are characterized by a very good frequency response, with a cut-off frequency usually ranging around 100 kHz. The ultra-conformability of such nanosheets allows their transfer and adhesion on complex target surfaces, such as the human skin without a significant change in their electrical performances, representing a step forward to the realization of conformable electronics particularly suited for personal monitoring systems for healthcare and sport.
AB - In this work we report the development of electronic circuits based on low voltage Organic Field-Effect Transistors (OFETs), entirely fabricated on polymer nanosheets acting as sub-micrometric substrates. The overall thickness of the proposed circuits (including the substrate, a 400 nm-thick Parylene C nanosheet) is only 600 nm, thus making them highly flexible, ultra-conformable and light-weighted. A complete characterization of the fabricated devices is reported. Mechanical performances of the nanosheets are thoroughly discussed. Full swing complementary inverters fabricated on same substrate show low noise margins and gains up to 10. Thanks to a carefully designed self-aligned structure, these devices are characterized by a very good frequency response, with a cut-off frequency usually ranging around 100 kHz. The ultra-conformability of such nanosheets allows their transfer and adhesion on complex target surfaces, such as the human skin without a significant change in their electrical performances, representing a step forward to the realization of conformable electronics particularly suited for personal monitoring systems for healthcare and sport.
KW - Electronic circuits
KW - Epidermal electronics
KW - Nanosheet
KW - OFET
KW - Tattoo electronics
UR - http://www.scopus.com/inward/record.url?scp=85017270523&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=85017270523&partnerID=8YFLogxK
U2 - 10.1016/j.orgel.2017.03.038
DO - 10.1016/j.orgel.2017.03.038
M3 - Article
AN - SCOPUS:85017270523
SN - 1566-1199
VL - 46
SP - 60
EP - 67
JO - Organic Electronics
JF - Organic Electronics
ER -