Award Abstract # 0708905
NIRT: Photon and Plasmon Engineering in Active Optical Devices based on Synthesized Nanostructures

NSF Org: ECCS
Division of Electrical, Communications and Cyber Systems
Recipient: PRESIDENT AND FELLOWS OF HARVARD COLLEGE
Initial Amendment Date: June 6, 2007
Latest Amendment Date: June 6, 2007
Award Number: 0708905
Award Instrument: Standard Grant
Program Manager: Dominique Dagenais
ddagenai@nsf.gov
 (703)292-2980
ECCS
 Division of Electrical, Communications and Cyber Systems
ENG
 Directorate for Engineering
Start Date: July 1, 2007
End Date: June 30, 2011 (Estimated)
Total Intended Award Amount: $1,299,996.00
Total Awarded Amount to Date: $1,299,996.00
Funds Obligated to Date: FY 2007 = $1,299,996.00
History of Investigator:
  • Marko Loncar (Principal Investigator)
    loncar@seas.harvard.edu
  • Hongkun Park (Co-Principal Investigator)
  • Mikhail Lukin (Co-Principal Investigator)
Recipient Sponsored Research Office: Harvard University
1033 MASSACHUSETTS AVE STE 3
CAMBRIDGE
MA  US  02138-5366
(617)495-5501
Sponsor Congressional District: 05
Primary Place of Performance: Harvard University
1033 MASSACHUSETTS AVE STE 3
CAMBRIDGE
MA  US  02138-5366
Primary Place of Performance
Congressional District:
05
Unique Entity Identifier (UEI): LN53LCFJFL45
Parent UEI:
NSF Program(s): NANOSCALE: INTRDISCPL RESRCH T
Primary Program Source: app-0107 
Program Reference Code(s): 0000, 103E, 1674, OTHR
Program Element Code(s): 167400
Award Agency Code: 4900
Fund Agency Code: 4900
Assistance Listing Number(s): 47.041

ABSTRACT


Intellectual Merits: The present project focuses on understanding of fundamental properties of light generation and control in active optical nanostructures, as well as development of robust and practical devices and systems for optical/ quantum information processing (e.g. single photon sources, nano-lasers). Promising routes include nano-scale surface plasmons and photonic crystals. The knowledge and techniques that will be developed in this program can find application in other fields, including life sciences and advanced photolithography. To achieve these goals, bottom-up synthesized nanoscale light emitters and top-down fabricated advanced structures for light localization and control will be combined. Bottom-up synthesized nanoemitters offer number of advantages over conventional epitaxially grown light emitters, including better uniformity, ease of fabrication, integration with passive optical platforms, and multi-wavelength operation. Important questions that pertain to these hybrid nanostructures such as, integration of different fabrication techniques, development of methodology for manipulation, positioning and efficiently in/out-coupling of light, will be investigated.
Broader Impacts: The proposed research will provide powerful educational opportunities for students by exposing them to an interdisciplinary collaboration (chemistry, physics and engineering) that encompasses theoretical calculations, nanostructure synthesis, device physics and design, nanofabrication and optical characterization. This will be accomplished by co-advising graduate students, holding joint group meetings and seminars, as well as organizing workshops. The educational component will be further enhanced by giving undergraduate students an opportunity to conduct research in this exciting interdisciplinary field through the NSF supported Research Experience for Undergraduates program and also by encouraging the participation of women and minority students. The team members will continue giving public lectures and organizing science projects at local public schools, mentoring high school students and working with high school teachers through the NSF supported Research Experience for Teachers program. The team members will also bring their expertise to ongoing Harvard outreach programs and engage the business-oriented public (e.g. Harvard Nanotechnology & Business Forum, Harvard Industrial Outreach Program).

PUBLICATIONS PRODUCED AS A RESULT OF THIS RESEARCH

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(Showing: 1 - 10 of 15)
10.Q. Quan, I. Bulu, and M. Loncar "Broadband waveguide QED system on a chip" Physical Review A , v.80 , 2009 , p.011810(R)
1.A. L. Falk, F. H. L. Koppens, C. Yu, K. Kang, N. P. de Leon Snapp, A. V. Akimov, M-H. Jo, M. D. Lukin, H. Park "Near field electrical detection of optical plasmons and single plasmon sources" Nature Physics , v.5 , 2009 , p.475
1.T.M. Babinec, B.M. Hausmann, M. Khan, Y. Zhang, J. Maze, P.R. Hemmer, M. Loncar "A bright single photon source based on a diamond nanowire" Nature Nanotechnology , v.5 , 2010 , p.195
2.B.M. Hausmann, M. Khan, T.M. Babinec, Y. Zhang, K. Martinick, M.W. McCutcheon, P.R. Hemmer, M. Loncar "Fabrication of diamond nanowires for quantum information processing applications" Diamond and Related Materials , 2010 10.1016/j.diamond.2010.01.011
Akimov, AV; Mukherjee, A; Yu, CL; Chang, DE; Zibrov, AS; Hemmer, PR; Park, H; Lukin, MD "Generation of single optical plasmons in metallic nanowires coupled to quantum dots" NATURE , v.450 , 2007 , p.402 View record at Web of Science 10.1038/nature0623
Babinec, TM; Hausmann, BJM; Khan, M; Zhang, YA; Maze, JR; Hemmer, PR; Loncar, M "A diamond nanowire single-photon source" NATURE NANOTECHNOLOGY , v.5 , 2010 , p.195 View record at Web of Science 10.1038/NNANO.2010.
Chang, DE; Sorensen, AS; Demler, EA; Lukin, MD "A single-photon transistor using nanoscale surface plasmons" NATURE PHYSICS , v.3 , 2007 , p.807 View record at Web of Science 10.1038/nphys70
Chang, DE; Thompson, JD; Park, H; Vuletic, V; Zibrov, AS; Zoller, P; Lukin, MD "Trapping and Manipulation of Isolated Atoms Using Nanoscale Plasmonic Structures" PHYSICAL REVIEW LETTERS , v.103 , 2009 View record at Web of Science 10.1103/PhysRevLett.103.12300
D.E. Chang, J.D. Thompson, H. Park, V. Vuletic, A.S. Zibrov, P. Zoller, M.D. Lukin "Trapping and Manipulation of Isolated Atoms Using Nanoscale Plasmonic Structures" Phys. Rev. Lett , v.103 , 2009 , p.123004
Falk, AL; Koppens, FHL; Yu, CL; Kang, K; Snapp, ND; Akimov, AV; Jo, MH; Lukin, MD; Park, H "Near-field electrical detection of optical plasmons and single-plasmon sources" NATURE PHYSICS , v.5 , 2009 , p.475 View record at Web of Science 10.1038/NPHYS128
McCutcheon, MW; Chang, DE; Zhang, YA; Lukin, MD; Loncar, M "Broadband frequency conversion and shaping of single photons emitted from a nonlinear cavity" OPTICS EXPRESS , v.17 , 2009 , p.22689 View record at Web of Science
(Showing: 1 - 10 of 15)

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