Local synthesis of carbon nanotubes for direct integration in Si microsystems – design considerations

Springer Science and Business Media LLC - Tập 1 - Trang 218-225 - 2013
Knut E. Aasmundtveit1, Bao Quoc Ta1, Quoc-Huy Nguyen1, Tormod B. Haugen1, Nils Hoivik1, Einar Halvorsen1
1IMST - Department of Micro and Nano System Technology, HiVe - Vestfold University College, Tonsberg, Norway

Tóm tắt

The integration of nanomaterials such as carbon nanotubes (CNTs) into microsystems is highly desirable, in order to make use of the unique nanomaterial properties in real devices. However, the CNT-to-microsystem integration is challenging to implement in a manufacturable, cost-effective industrial process. This paper presents our work towards a process for making complete, integrated CMOS / MEMS systems with integrated CNT. We demonstrate the feasibility of the process, using room-temperature processing, low-cost equipment and consumables, and electrical control with automation possibilities. CNTs are directly integrated at the desired positions in the Si microsystem, forming closed Si / CNT / Si circuits. We explore different designs with the aim to obtain uniform and well-defined CNT synthesis conditions, and show that simplified designs can perform comparably to more complex ones. The Si / CNT / Si circuits obtained can show rectifying (Schottky-like) or near-ohmic behavior. Gas sensing possibilities are demonstrated, indicating the possibility of monitoring aging/ fermenting of food. Functionalization of CNTs is demonstrated, using thermal evaporation of Sn and Pd, opening for selective and sensitive sensors for various gases and analytes. Detailed microscopic characterization of the obtained CNTs are presented.

Tài liệu tham khảo

Kawano T, Chiamori HC, Suter M, Zhou Q, Sosnowchik BD, Lin L (2007) An electrothermal carbon nanotube gas sensor. Nano Lett 7:3686–3690 Jacobs CB, Peairs MJ, Venton BJ (2010) Review: carbon nanotube based electrochemical sensors for biomolecules. Anal Chim Acta 662:105–127 Avouris P, Freitag M, Perebeinos V (2008) Carbon-nanotube photonics and optoelectronics. Nat Photonics 2:341–350 Zhang T, Mubeen S, Myung NV, Deshusses MA (2008) Recent progress in carbon nanotube-based gas sensors. Nanotechnology 19(33):332001 Morris JE, Iniewski K (eds) (2013) Nanoelectronic device applications handbook. CRC Press, Boca Raton, FL, USA Martel R, Schmidt T, Shea HR, Hertel T, Avouris P (1998) Single- and multi-wall carbon nanotube field-effect transistors. Appl Phys Lett 73:2447–2449 Aasmundtveit KE, Ta BQ, Lin LW, Halvorsen E, Hoivik N (2012) Direct integration of carbon nanotubes in Si microstructures. J Micromech Microeng 22(7):074006 Aasmundtveit KE, Ta BQ, Hoivik N, Halvorsen E (2013) Electrical control on synthesis conditions for locally grown CNTs on polysilicon microstructures. In: Morris JE, Iniewski K (eds) Nanoelectronic Device Applications Handbook. CRC Press, Boca Raton, FL, USA Qingqing G, Albert E, Fabel B, Abdellah A, Lugli P, Chan-Park MB, Scarpa G (2011) Solution-processable random carbon nanotube networks for thin-film transistors. In: 11th IEEE conference on nanotechnology, IEEE-NANO, pp 378–381 Cullinan MA, Culpepper ML (2011) Design and fabrication of single chirality carbon nanotube-based sensors. In: 11th IEEE conference on nanotechnology, IEEE-NANO, pp 26–29 Englander O, Christensen D, Lin L (2003) Local synthesis of silicon nanowires and carbon nanotubes on microbridges. Appl Phys Lett 82:4797–4799 Christensen D, Englander O, Jongbaeg K, Lin L (2003) Room temperature local synthesis of carbon nanotubes. In: Third IEEE conference on IEEE-NANO, pp 581–584 Dittmer S, Nerushev OA, Campbell EEB (2006) Low ambient temperature CVD growth of carbon nanotubes. Appl Phys A Mater Sci Process 84:243–246 Ta BQ, Hoivik N, Halvorsen E, Aasmundtveit KE (2011) Electrical control of synthesis conditions for locally grown CNTs on polysilicon microstructure. In: 11th IEEE conference on nanotechnology, IEEE-NANO, pp 374–377 Miller DC, Boyce BL, Dugger MT, Buchheit TE, Gall K (2007) Characteristics of a commercially available silicon-on-insulator MEMS material. Sens Actuators A Phys 138:130–144 Nguyen QH (2012) Catalyst Preparation for local synthesis of carbon nanotubes. Dissertation, Vestfold University College Ta BQ, Halvorsen E, Hoivik N, Aasmundtveit KE (2013) Diameter dependency for the electric-field-assisted growth of CNTs. Appl Phys Lett (accepted) Ta BQ, Haugen TB, Hoivik N, Halvorsen E, Aasmundtveit KE (2013) Local synthesis of CNTs in Si microsystems: the effect of temperature distribution on growth structure. Materials 6:3160–3170 Haugen TB, Ta BQ, Halvorsen E, Hoivik N, Aasmundtveit KE (2013) Integration of CNTs in microsystems: local growth and electrical properties of contacts. Materials 6:3094–3107 Nguyen QH, Ta BQ, Hoivik N, Halvorsen E, Aasmundtveit KE (2013) CNT-based gas sensor for expiration detection of perishable food. In: 13th IEEE conference on nanotechnology, IEEE-Nano, Beijing, China, pp 675–678 Ta BQ, Ngo AV, Nguyen QH, Hoivik N, Halvorsen E, Aasmundtveit KE (2013) Deposition of Pd on suspended and locally grown CNTs using thermal evaporation. In: 13th IEEE conference on nanotechnology, IEEE-Nano, pp 1176–1179