Infrared quantum dots

被引:495
作者
Sargent, EH
机构
[1] MIT, Microphoton Lab, Cambridge, MA 02139 USA
[2] Univ Toronto, Nortel Networks Canada Res Chair Emerging Technol, Toronto, ON M5S 1A1, Canada
关键词
D O I
10.1002/adma.200401552
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Colloidal nanocrystals are quantum-size-effect tunable; offer an abundance of available surface area for electronic and chemical interactions; and are processible from organic or aqueous solution onto substrates rigid or flexible, smooth or rough, flat or curved, inorganic or organic (including biological), crystalline or amorphous, conducting, semiconducting, or insulating. With the benefit of over a decade's progress in visible-light-emitting colloidal-quantum-dot synthesis, physical chemistry, and devices, significant progress has recently been made in infrared-active colloidal quantum dots and devices. This progress report summarizes the state-of-the-art in infrared colloidal quantum dots, with an emphasis on applications and devices. The applications of interest surveyed include monolithic integration of fiber-optic and free-space-communications photonic components with electronic substrates such as silicon and glass; in-vivo biological tagging in infrared spectral bands in which living tissue is optically penetrable to a depth of 5-10 cm; solar and thermal photovoltaics for energy conversion; and infrared sensing and imaging based on non-visible, including thermal, signatures. The synthesis and properties of quantum dots are first reviewed: photoluminescence quantum efficiencies greater than 50% are achievable in solution, and stable luminescent dots are available in organic and aqueous solvents. Electroluminescent devices based on solution processing have been reported with external quantum efficiencies approaching 1%. Photoconductive devices have been realized with 3% internal quantum efficiencies, and a photovoltaic effect was recently observed. Electro-optic modulation achieved by either field- or charge-induced modification of the rate of optical absorption has been demonstrated based both on interband and intersubband (intraband) transitions. Optical gain from these processible materials with a threshold of 1 mJ cm(-2) and an optical net modal gain coefficient of 260 +/- 20 cm(-1) have been reported.
引用
收藏
页码:515 / 522
页数:8
相关论文
共 33 条
[1]   Energy-transfer pumping of semiconductor nanocrystals using an epitaxial quantum well [J].
Achermann, M ;
Petruska, MA ;
Kos, S ;
Smith, DL ;
Koleske, DD ;
Klimov, VI .
NATURE, 2004, 429 (6992) :642-646
[2]   PbS quantum dots with stable efficient luminescence in the near-IR spectral range [J].
Bakueva, L ;
Gorelikov, I ;
Musikhin, S ;
Zhao, XS ;
Sargent, EH ;
Kumacheva, E .
ADVANCED MATERIALS, 2004, 16 (11) :926-929
[3]   Luminescence from processible quantum dot-polymer light emitters 1100-1600 nm: Tailoring spectral width and shape [J].
Bakueva, L ;
Konstantatos, G ;
Levina, L ;
Musikhin, S ;
Sargent, EH .
APPLIED PHYSICS LETTERS, 2004, 84 (18) :3459-3461
[4]   Size-tunable infrared (1000-1600 nm) electroluminescence from PbS quantum-dot nanocrystals in a semiconducting polymer [J].
Bakueva, L ;
Musikhin, S ;
Hines, MA ;
Chang, TWF ;
Tzolov, M ;
Scholes, GD ;
Sargent, EH .
APPLIED PHYSICS LETTERS, 2003, 82 (17) :2895-2897
[5]   High near-infrared photoluminescence quantum efficiency from PbS nanocrystals in polymer films [J].
Chang, TWF ;
Maria, A ;
Cyr, PW ;
Sukhovatkin, V ;
Levina, L ;
Sargent, EH .
SYNTHETIC METALS, 2005, 148 (03) :257-261
[6]   Efficient excitation transfer from polymer to nanocrystals [J].
Chang, TWF ;
Musikhin, S ;
Bakueva, L ;
Levina, L ;
Hines, MA ;
Cyr, PW ;
Sargent, EH .
APPLIED PHYSICS LETTERS, 2004, 84 (21) :4295-4297
[7]   Spectrally resolved dynamics of energy transfer in quantum-dot assemblies: Towards engineered energy flows in artificial materials [J].
Crooker, SA ;
Hollingsworth, JA ;
Tretiak, S ;
Klimov, VI .
PHYSICAL REVIEW LETTERS, 2002, 89 (18)
[8]  
*EPIC, BAA0415
[9]   Thermophotovoltaic system configurations and spectral control [J].
Fraas, LM ;
Avery, JE ;
Huang, HX ;
Martinelli, RU .
SEMICONDUCTOR SCIENCE AND TECHNOLOGY, 2003, 18 (05) :S165-S173
[10]   In vivo cancer targeting and imaging with semiconductor quantum dots [J].
Gao, XH ;
Cui, YY ;
Levenson, RM ;
Chung, LWK ;
Nie, SM .
NATURE BIOTECHNOLOGY, 2004, 22 (08) :969-976