Electrical Transport in Thin Film Nanostructures Hanno H. Weitering, The University of Tennessee, DMR 0244570 Competing periodicities in a single atom.

Slides:



Advertisements
Similar presentations
Development and Application of a New Method for Epitaxial Growth of Metals, Alloys and Multilayers by Surface Limited Redox Replacement Nikolay Dimitrov,
Advertisements

SRC Review – October 4 th, 2005 © 2005 M.Y. Simmons Single atom imaging and manipulation Don Eigler (IBM), Science 262, 218 (1993) Silicon (100) surface.
Center for Advanced Materials and Smart Structures WEB: Pulsed Laser Deposition Assisted Fabrication and Characterization of the.
The resistivity of bulk ferromagnetic metals depends on the angle between the magnetization and the electric current. This phenomenon was discovered by.
Polaronic transport and current blockades in epitaxial silicide nanowires and nanowire arrays CNMS Staff Science Highlight Scientific Achievement Significance.
Doping and Disorder in the Oxygenated, Electron-doped High-temperature Superconductor Pr 2-x Ce x CuO 4±  The building blocks of the high-temperature.
Micro/Nanoscale Thermal Science Laboratory Department of Mechanical Engineering URL: Large-scale Atomistic Modeling of.
Development of Scanning Probe Lithography (SPL)
Nanomaterials & Nanotechnology
Winner of 2011 Acta Materialia Gold Medal and Prize Acta Materialia 58 (2010) 5545– The MRS Symposium on.
Near-Field Optical Microscope with an Integrated Nanometer-Sized Light Emitting Diode John X.J. Zhang (P.I.) & Kazunori Hoshino Department of Biomedical.
ELE 523E COMPUTATIONAL NANOELECTRONICS W1: Introduction, 8/9/2014 FALL 2014 Mustafa Altun Electronics & Communication Engineering Istanbul Technical University.
Holistic approach to mentoring (teaching and research) next-generation scientists & engineers J. Narayan Department of Materials Science and Engineering.
Complex Materials Group Peter F. Green Department of Chemical Engineering and Texas Materials Institute The University of Texas at Austin.
Tools of the Nanosciences There’s plenty of room at the bottom It is my intention to offer a prize of $1,000 to the first guy who can take the information.
When and why are ultrathin films of metallic oxides not metallic? Jiandi Zhang, Louisiana State University & Agricultural and Mechanical College, DMR
Science and Technology of Nano Materials
National Science Foundation Material for Future Low-Power Electronics Daniel Gall, Rensselaer Polytechnic Institute, DMR Outcome: Researchers at.
Strands of DNA have been used as tiny scaffolds to create superconducting nanodevices that demonstrate a new quantum interference phenomenon. These nanowire.
Building a more complex molecule C 2 Isolated impurities From E. A. Moore: “Molecular Modelling and bonding”, Royal Soc. Chem.
“Scanning Tunneling Microscopy Transmission Electron Microscopy”
Attosecond Light and Science at the Time-scale of the Electron –
“Electron dynamics in organic semiconductors and at organic metal interfaces” Xiaoyang Zhu, University of Minnesota, NSF DMR March 1 st,
Quantum Electronic Structure of Atomically Uniform Pb Films on Si(111) Tai C. Chiang, U of Illinois at Urbana-Champaign, DMR Miniaturization of.
December 2, 2011Ph.D. Thesis Presentation First principles simulations of nanoelectronic devices Jesse Maassen (Supervisor : Prof. Hong Guo) Department.
National Science Foundation Ultrafast Phase Transition and Critical Issues in Structure-Property Correlations of Vanadium Oxide Jagdish Narayan, North.
Novel Real Time Optics for Thin Film Materials Research - I Robert W. Collins The Pennsylvania State University, DMR New optical spectroscopies.
LaBella Group Towards an Atomic Scale Understanding of Spin Polarized Electron Transport Towards an Atomic.
National Science Foundation Processing Lead-Free Piezoelectrics at Lower Energy Consumption Xiaoli Tan, Iowa State University, DMR Outcome: Researchers.
Creative Research Initiatives Seoul National University Center for Near-field Atom-Photon Technology - Near Field Scanning Optical Microscopy - Electrostatic.
Nanoscale Science and Engineering. Nanoscale Science and Engineering embodies fundamental research and technology development of materials, structures,
Today –Homework #4 Due –Scanning Probe Microscopy, Optical Spectroscopy –11 am NanoLab Tour Tomorrow –Fill out project outline –Quiz #3 in regular classroom.
NIRT: Controlling Interfacial Activity of Nanoparticles: Robust Routes to Nanoparticle- based Capsules, Membranes, and Electronic Materials (CBET )
Nonlinear spectroscopy of planar and nano-crystalline silicon interfaces: experiments for ab initio theory Mike Downer, University of Texas at Austin,
Direct Measurements of Fundamental Sintering Parameters in Nanoparticles Desiderio Kovar, University of Texas at Austin, DMR Metal nanoparticles.
100nm c d a b Figure 2. Island shapes (AFM phase images) for different metal-species/Si-orientation combinations: (a) Au/Si(001), (b) Au/Si(111), (c) Sn/Si(110),
Quantum Confinement in Nanostructures Confined in: 1 Direction: Quantum well (thin film) Two-dimensional electrons 2 Directions: Quantum wire One-dimensional.
Self-assembly Nanostructure and Lithography
Chapter 2 Properties on the Nanoscale
Engr College of Engineering Engineering Education Innovation Center Engr 1182 Nano Pre-Lab Demolding Rev: 20XXMMDD, InitialsPresentation Short.
Electrical Transport in Thin Film Nanostructures Hanno H. Weitering, The University of Tennessee, DMR Understanding and control of electrical conductivity.
Younan Xia (NSF Award Number: DMR ) Department of Chemistry, University of Washington Silver nanostructures are containers for surface plasmons.
Nanoscience and ICT. What do the Apollo mission spacecraft to the moon and a washing machine have in common? Same amount of computing power! Technology.
Ferroelectric Nanolithography Extended to Flexible Substrates Dawn A. Bonnell, University of Pennsylvania, DMR Recent advances in materials synthesis.
Example: Magnetic field control of the conducting and orbital phases of layered ruthenates, J. Karpus et al., Phys. Rev. Lett. 93, (2004)  Used.
Thin films are basic building blocks for devices. As device size shrinks, quantum effects become important, and traditional thinking in terms of electron.
Solution Aging Impact on the Voiding in Cu-Solder Joints A completely electrochemical scheme has been proposed for synthesis of nanoporous Au (NPG) based.
Metal-Insulator Transition via Spatially Heterogeneous State Jongsoo Yoon, University of Virginia, DMR Differential resistance (dV/dI) of a 5nm.
ME 381R Fall 2003 Micro-Nano Scale Thermal-Fluid Science and Technology Lecture 11: Thermal Property Measurement Techniques For Thin Films and Nanostructures.
National Science Foundation Sb-doped SnO 2 as a transparent contact on InGaN/GaN LEDs James S. Speck, University of California-Santa Barbara, DMR
Formation of Ge alloy nanocrystals embedded in silica Eugene E. Haller, University of California-Berkeley, DMR Above: High-angle annular dark field.
In situ X-ray Diffraction Study of High Performance Organic Semiconductor Polymorphism Zhenan Bao, Stanford University, DMR Flexible, transparent.
Exploiting geometry to generate anisotropic interactions at the nanoscale and self-assembly of living clusters Angelo Cacciuto, Columbia University, DMR.
LaBella Group cnse.albany.edu Towards an Atomic Scale Understanding of Spin Polarized Electron Transport Towards.
Optoelectronic Supramolecular Block-Copolymer Assemblies Aided by Donor- Acceptor Interactions Alexander Sidorenko, University of the Sciences in Philadelphia,
Probing of Nanostructured Surfaces at Attosecond Timescales Emma Catton 1 st year PhD student in the Atomic Manipulation Group at NPRL Based in Birmingham.
From quasi-2D metal with ferromagnetic bilayers to Mott insulator with G-type antiferromagnetic order in Ca 3 (Ru 1−x Ti x ) 2 O 7 Zhiqiang Mao, Tulane.
Electrical Transport in Thin Film Nanostructures Hanno H. Weitering, The University of Tennessee, DMR Understanding and control of electrical conductivity.
National Science Foundation Graphene mediated self-assembly of fullerene nanotubes Krishna Muralidharan, University of Arizona, DMR Outcome: Researchers.
 Characterizing the Order in 2D Block Copolymer Single Crystals Edward J. Kramer, University of California-Santa Barbara, DMR D single crystal.
ZnO and Mg x Zn 1-x O are technologically promising materials for luminescence applications in the ultraviolet (UV) range. ZnO has a bandgap ~3.3 eV, while.
Schedule Week 2: Martin Luther King Recess 1st paper due
Single-molecule transistors: many-body physics and possible applications Douglas Natelson, Rice University, DMR (a) Transistors are semiconductor.
Goals for Today: Syllabus Review
Quantum Mechanical Control of Surface Chemical Reactivity
北京大学量子材料科学中心 Seminar International Center for Quantum Materials, PKU
John G. Ekerdt Professor, University of Texas at Austin
Multiscale Modeling and Simulation of Nanoengineering:
Glass-like Thermal Conductivity in Epitaxial Oxygen-Vacancy-Ordered Oxide Films UMN MRSEC Award DMR# Xiaojia Wang (IRG-2) & Chris Leighton.
Real-space imaging of a nematic quantum liquid
Presentation transcript:

Electrical Transport in Thin Film Nanostructures Hanno H. Weitering, The University of Tennessee, DMR Competing periodicities in a single atom wire Fractional quantum numbers in a phase slip The smallest wire width in mass produced electronic devices is about 50 nm, or about 500 atoms across. The ultimate limit of thinness would be wires of only one atom wide. Such wires can be made now, although not for any working electronic device, and it is important to know their properties for future technology. Atom wires can be created via self-assembly on vicinal silicon surfaces. We addressed their formation, stability, metallicity, and the role of disorder. Gallium atom wires show entropic disorder that limits their structural perfection. On the other hand, Au-induced atom wires reveal three competing charge density wave instabilities (or a multiband Peierls instability). Phase slips in these density waves represent fractionally charged quasi-particles that can be imaged and spatially manipulated with the tip of a scanning tunneling microscope. Phys. Rev. Lett. 96, (2006) and AIP Physics News Update # 767

Electrical Transport in Thin Film Nanostructures Hanno H. Weitering, The University of Tennessee, DMR Education: Two graduate students (Murat Özer and Eun Ju Moon) and one postdoc (Jiandong Guo) were supported by this award. Murat Özer was first author on a paper in the March 2006 issue of Nature Physics showing that films only a few atom layers thick can carry enormous supercurrents—defying theories that superconductivity is typically weak at the nanoscale. For this work, he won the prestigious Nottingham Prize for best student presentation at the 2006 Physical Electronics Conference at Princeton University. He also received the University Chancellor’s Citation for Professional Promise and a Paul H. Stelson Research Fellowship from the Physics Department. Murat Özer received his Ph.D. degree at UT in the summer of He is currently postdoc at the University of Texas in Austin. Dr. Jiandong Guo pioneered optical studies of thin film nanostructures. He left the group in October 2005 to become a junior physics professor at the Chinese Academy of Sciences in Beijing. Eun Ju Moon began her thesis research in January She has build dedicated measurement equipment for in-situ studies of quantum transport in thin film nanostructures and is continuing her Ph.D. dissertation research. Societal Impact: Nanoscience represents a very promising avenue for future innovations in e.g. the physical sciences, medicine, and information technology. A key requirement for making functional nanodevices is the ability to acquire perfect control of their structure and morphology. A viable way to accomplish this is to exploit quantum mechanical laws while tuning and assembling nano structures. This work represents an important case-study, showing: (1) how quantum mechanics can be used to control the structure and morphology of thin film nanostructures at the atomic level, and (2) how the “quantum engineered morphology” of thin films relates to one of their most appealing functionalities, namely dissipation-free electrical conductivity or “superconductivity.”