An ultra-lightweight design for imperceptible plastic electronics

Nature - Tập 499 Số 7459 - Trang 458-463 - 2013
Martin Kaltenbrunner1, Tsuyoshi Sekitani2,1, Jonathan T. Reeder3,1, Tomoyuki Yokota1, Kazunori Kuribara1, Takeyoshi Tanaka1, Michael Drack4, Reinhard Schwödiauer4, Ingrid Graz4, S. Bauer‐Gogonea4, Siegfried Bauer4, Takao Someya2,1
1The University of Tokyo, Electrical and Electronic Engineering and Information Systems, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan,
2Exploratory Research for Advanced Technology (ERATO), Japan Science and Technology Agency (JST), 2-11-16 Yayoi, Bunkyo-ku, Tokyo 113-0032, Japan
3Present address: The University of Texas at Dallas, Department of Materials Science and Engineering, 800 West Campbell Road, Richardson, Texas 75080-3021, USA.,
4Johannes Kepler University, Soft Matter Physics, Altenbergerstrasse 69, 4040 Linz, Austria,

Tóm tắt

Từ khóa


Tài liệu tham khảo

Wong W. S., Salleo A., eds. Flexible Electronics: Materials and Applications (Springer, 2010)

Cherenack, K. & van Pieterson, L. Smart textiles: challenges and opportunities. J. Appl. Phys. 112, 091301 (2012)

Wagner, S. & Bauer, S. Materials for stretchable electronics. MRS Bull. 37 (special issue), 207–213 (2012)

Ma, E. Y. & Wagner, S. Amorphous silicon transistors on ultrathin steel foil substrates. Appl. Phys. Lett. 74, 2661–2662 (1999)

Sekitani, T. et al. Ultraflexible organic field-effect transistors embedded at a neutral strain position. Appl. Phys. Lett. 87, 173502 (2005)

Sekitani, T., Zschieschang, U., Klauk, H. & Someya, T. Flexible organic transistors and circuits with extreme bending stability. Nature Mater. 9, 1015–1022 (2010)

Shahrjerdi, D. & Bedell, S. W. Extremely flexible nanoscale ultrathin body silicon integrated circuits on plastic. Nano Lett. 13, 315–320 (2013)

Kim, D. H. et al. Stretchable and foldable silicon integrated circuits. Science 320, 507–511 (2008)

Sekitani, T. et al. A rubberlike stretchable active matrix using elastic conductors. Science 321, 1468–1472 (2008)

Graz, I. M., Cotton, D. P. J., Robinson, A. & Lacour, S. P. Silicone substrate with in situ strain relief for stretchable thin-film transistors. Appl. Phys. Lett. 98, 124101 (2011)

Someya, T. et al. Conformable, flexible, large-area networks of pressure and thermal sensors with organic transistor active matrixes. Proc. Natl Acad. Sci. USA 102, 12321–12325 (2005)

Kim, D. H. et al. Epidermal electronics. Science 333, 838–843 (2011)

Sokolov, A. N., Tee, B. C. K., Bettinger, C. J., Tok, J. B. H. & Bao, Z. Chemical and engineering approaches to enable organic field-effect transistors for electronic skin applications. Acc. Chem. Res. 45, 361–371 (2012)

Lipomi, D. J. et al. Skin-like pressure and strain sensors based on transparent elastic films of carbon nanotubes. Nature Nanotechnol. 6, 788–792 (2011)

White, M. S. et al. Ultrathin, highly flexible and stretchable PLEDs. Nature Photonics (in the press)

Kaltenbrunner, M. et al. Ultrathin and lightweight organic solar cells with high flexibility. Nature Commun. 3, 770–777 (2012)

Mardare, A. I., Kaltenbrunner, M., Sariciftci, N. S., Bauer, S. & Hassel, A. W. Ultra-thin anodic alumina capacitor films for plastic electronics. Phys. Status Solidi, A Appl. Res. 209, 813–818 (2012)

Lohrengel, M. M. Thin anodic oxide layers on aluminum and other valve metals—high-field regime. Mater. Sci. Eng. Rep. 11, 243–294 (1993)

Klauk, H., Zschieschang, U., Pflaum, J. & Halik, M. Ultralow-power organic complementary circuits. Nature 445, 745–748 (2007)

Yamamoto, T. & Takimiya, K. Facile synthesis of highly pi-extended heteroarenes, dinaphtho[2,3-b:2′,3′-f]chalcogenopheno[3,2-b]chalcogenophenes, and their application to field-effect transistors. J. Am. Chem. Soc. 129, 2224–2225 (2007)

de Almeida, L. A. L. et al. Modeling and performance of vanadium–oxide transition edge microbolometers. Appl. Phys. Lett. 85, 3605–3607 (2004)

Wang, B., Lai, J., Li, H., Hu, H. & Chen, S. Nanostructured vanadium oxide thin film with high TCR at room temperature for microbolometer. Infrared Phys. Technol. 57C, 8–13 (2013)

Oh, D.-W., Kim, S., Rogers, J. A., Cahill, D. G. & Sinha, S. Interfacial thermal conductance of transfer-printed metal films. Adv. Mater. 23, 5028–5033 (2011)

Gonzalez, M. et al. in 11th International Conference on Thermal, Mechanical and Multi-Physics Simulation and Experiments in Microelectronics and Microsystems (EuroSimE 2010) (eds Ernst, L. J. et al.) 1–7 (IEEE, 2010)

Tu, K. N. Recent advances on electromigration in very-large-scale-integration of interconnects. J. Appl. Phys. 94, 5451–5473 (2003)

Zschieschang, U. et al. Flexible low-voltage organic thin-film transistors and circuits based on C10-DNTT. J. Mater. Chem. 22, 4273–4277 (2012)

Khang, D., Jiang, H., Huang, Y. & Rogers, J. A stretchable form of single-crystal silicon for high-performance electronics on rubber substrates. Science 311, 208–212 (2006)

Suo, Z., Ma, E., Gleskova, H. & Wagner, S. Mechanics of rollable and foldable film-on-foil electronics. Appl. Phys. Lett. 74, 1177–1179 (1999)

Rogers, J. A., Someya, T. & Huang, Y. Materials and mechanics for stretchable electronics. Science 327, 1603–1607 (2010)

Zang, J. et al. Multifunctionality and control of the crumpling and unfolding of large-area graphene. Nature Mater. 12, 1–5 (2013)

Gärditz, C., Winnacker, A., Schindler, F. & Paetzold, R. Impact of Joule heating on the brightness homogeneity of organic light emitting devices. Appl. Phys. Lett. 90, 103506 (2007)

Bauer, S. & Ploss, B. A method for the measurement of the thermal, dielectric, and pyroelectric properties of thin pyroelectric films and their applications for integrated heat sensors. J. Appl. Phys. 68, 6361–6367 (1990)

Facchetti, A., Yoon, M. H. & Marks, T. J. Gate dielectrics for organic field-effect transistors: new opportunities for organic electronics. Adv. Mater. 17, 1705–1725 (2005)

Yan, H. et al. A high-mobility electron-transporting polymer for printed transistors. Nature 457, 679–686 (2008)

Usta, H., Facchetti, A. & Marks, T. J. Air-stable, solution-processable n-channel and ambipolar semiconductors for thin-film transistors based on the indenofluorenebis(dicyanovinylene) core. J. Am. Chem. Soc. 130, 8580–8581 (2008)

Oh, J. H. et al. High-performance air-stable n-type organic transistors based on core-chlorinated naphthalene tetracarboxylic diimides. Adv. Funct. Mater. 20, 2148–2156 (2010)

Jung, B. J., Lee, K., Sun, J., Andreou, A. G. & Katz, H. E. Air-operable, high-mobility organic transistors with semifluorinated side chains and unsubstituted naphthalenetetracarboxylic diimide cores: high mobility and environmental and bias stress stability from the perfluorooctylpropyl side chain. Adv. Funct. Mater. 20, 2930–2944 (2010)

Zhang, X.-H., Potscavage, W. J., Choi, S. & Kippelen, B. Low-voltage flexible organic complementary inverters with high noise margin and high dc gain. Appl. Phys. Lett. 94, 043312 (2009)

Geib, S. et al. Core-brominated tetraazaperopyrenes as n-channel semiconductors for organic complementary circuits on flexible substrates. Adv. Funct. Mater.. http://dx.doi.org/10.1002/adfm.201203600 (27 May 2013)

Baeg, K.-J. et al. High speeds complementary integrated circuits fabricated with all-printed polymeric semiconductors. J. Polym. Sci. B 49, 62–67 (2010)