In Situ Observation of Carbon Nanotube Layer Growth on Microbolometers with Substrates at Ambient Temperature

. 2018 Mar ; 123 (11) : . [epub] 20180320

Status PubMed-not-MEDLINE Jazyk angličtina Země Spojené státy americké Médium print-electronic

Typ dokumentu časopisecké články

Perzistentní odkaz   https://www.medvik.cz/link/pmid29910508

Grantová podpora
9999-NIST Intramural NIST DOC - United States

Carbon nanotubes (CNTs) have near unity infrared (IR) absorption efficiency, making them extremely attractive in IR imaging devices. Since CNT growth occurs at elevated temperatures, integration of CNTs with IR imaging devices is challenging and has not yet been achieved. Here we show a strategy for implementing CNTs as IR absorbers using differential heating of thermally-isolated microbolometer membranes in a C2H2 environment. During the process, CNTs were catalytically grown on the surface of a locally-heated membrane while the substrate was maintained at an ambient temperature. CNT growth was monitored in situ in real time using optical microscopy. During growth, we measured the intensity of light emission and the reflected light from the heated microbolometer. Our measurements of bolometer performance show that the CNT layer on the surface of the microbolometer membrane increases the IR response by a factor of (2.3 ± 0.1) (mean ± one standard deviation of the least-squares fit parameters). This work opens the door to integrating near unity IR absorption, CNT-based, IR absorbers with hybrid complementary metal-oxide-semiconductor focal plane array architectures.

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Rogalski A. Infrared Phys Technol. 2011;54:136.

Liddiard KC. Infrared Phys. 1984;24:57.

Neuzil P, Liu Y, Feng HH, Zeng WJ. IEEE Electron Device Lett. 2005;26:320.

Mei T, Neuzil P, Karunasiri G, Zeng W. Appl Phys Lett. 2002;80:2183.

Lehman JH, Engtrakul C, Gennett T, Dillon AC. Appl Opt. 2005;44:483. PubMed

Yang ZP, Ci L, Bur JA, Lin SY, Ajayan PM. Nano Letters. 2008;8:446. PubMed

Lehman J, Sanders A, Hanssen L, Wilthan B, Zeng J, Jensen C. Nano Lett. 2010;10:3261. PubMed

Meyyappan M, Lance D, Alan C, David H. Plasma Sources Sci Technol. 2003;12:205.

Huang SM, Dai LM, Mau AWH. Adv Mater. 2002;14:1140.

Zhang SL, Östling M. Crit Rev Solid State Mater Sci. 2003;28:1.

Shulaker MM, Hills G, Patil N, Wei H, Chen H-Y, PhilipWong HS, Mitra S. Nature. 2013;501:526. PubMed

Balram KC, Westly DA, Davanco M, Grutter K, Li Q, Michels T, Ray CH, Yu L, Kasica R, Wallin CB, Gilbert I, Bryce BA, Simelgor G, Topolancik J, Lobontiu N, Liu Y, Neuzil P, Svatos V, Dill KA, Bertrand NA, Metzler M, Lopez G, Czaplewski DA, Ocola L, Srinivasan K, Stavis S, Aksyuk V, Liddle JA, Krylov S, Ilic BR. J Res Natl Inst Stand. 2016;121:464. PubMed PMC

Gu X, Karunasiri G, Chen G, Sridhar U, Xu B. Appl Phys Lett. 1998;72:1881.

He X, Karunasiri G, Mei T, Zeng WJ, Neuzil P, Sridhar U. IEEE Electron Device Lett. 2000;21:233.

Mizuno K, Ishii J, Kishida H, Hayamizu Y, Yasuda S, Futaba DN, Yumura M, Hata K. Proc Natl Acad Sci U S A. 2009;106:6044. PubMed PMC

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