Electrical Transport in Thin Film Nanostructures Hanno H. Weitering, The University of Tennessee, DMR 0244570 Understanding and control of electrical conductivity.

Slides:



Advertisements
Similar presentations
Anodic Aluminum Oxide.
Advertisements

Center for Advanced Materials and Smart Structures WEB: Pulsed Laser Deposition Assisted Fabrication and Characterization of the.
Nature provides us of many examples of self- assembled materials, from soft and flexible cell- membranes to hard sea shells. Such materials.
Polaronic transport and current blockades in epitaxial silicide nanowires and nanowire arrays CNMS Staff Science Highlight Scientific Achievement Significance.
c18cof01 Magnetic Properties Iron single crystal photomicrographs
Morphological Evolution during Graphene Formation on SiC(0001) Randall Feenstra, Carnegie Mellon University, DMR Graphene, consisting of monolayer.
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.
ECRYS 2011 Confinement-Induced Vortex Phases in Superconductors Institut des Nanosciences de Paris INSP, CNRS, Université Pierre et Marie Curie Paris 6,
Atomic Force Microscopy Studies of Gold Thin Films
Directed Assembly of Block Copolymer Blends into Nonregular Device-Oriented Structures Mark P. Stoykovich,1 Marcus Mu¨ller,2 Sang Ouk Kim,3 Harun H. Solak,4.
High Temperature Copper Oxide Superconductors: Properties, Theory and Applications in Society Presented by Thomas Hines in partial fulfillment of Physics.
Vortex Dynamics in Type II Superconductors Yuri V. Artemov Yuri V. Artemov Ph.D. Student in Physics Brian B. Schwartz Mentor: Brian B. Schwartz Professor.
Magnetic Properties of Materials
Superconducting Qubits Kyle Garton Physics C191 Fall 2009.
Quantum Electronic Effects on Growth and Structure of Thin Films P. Czoschke, Hawoong Hong, L. Basile, C.-M. Wei, M. Y. Chou, M. Holt, Z. Wu, H. Chen and.
Interface Spin Orbit Coupling in a Thin Film Superconductor Philip W. Adams, Louisiana State University, DMR We have recently completed a series.
Superconductivity and Superfluidity The London penetration depth but also F and H London suggested that not only To which the solution is L is known as.
When and why are ultrathin films of metallic oxides not metallic? Jiandi Zhang, Louisiana State University & Agricultural and Mechanical College, DMR
Superconducting/Semiconducting Nanowires, Nanotubes, and Ultrathin Films Wenhao Wu, Texas A&M University, DMR We use membranes with a honeycomb.
National Science Foundation Material for Future Low-Power Electronics Daniel Gall, Rensselaer Polytechnic Institute, DMR Outcome: Researchers at.
National Science Foundation Materials World Network-- Ultrafast Switching of Phase Change Materials: Combined Nanosecond and Nanometer Exploration Bryan.
Strands of DNA have been used as tiny scaffolds to create superconducting nanodevices that demonstrate a new quantum interference phenomenon. These nanowire.
Heat Transport by Liquid Helium through Aerogel James A. Sauls, Northwestern University, DMR Silica Aerogel is very low density glass (SiO 2 )
I. Grigorieva, L. Vinnikov, A. Geim (Manchester) V. Oboznov, S. Dubonos (Chernogolovka)
Quantum Electronic Structure of Atomically Uniform Pb Films on Si(111) Tai C. Chiang, U of Illinois at Urbana-Champaign, DMR Miniaturization of.
National Science Foundation Ultrafast Phase Transition and Critical Issues in Structure-Property Correlations of Vanadium Oxide Jagdish Narayan, North.
Electrical Behavior of TiO 2 Grain Boundaries E.C. Dickey (PI), Pennsylvania State University, DMR Electroceramics are utilized in a wide variety.
Organic conductors and superconductors go nano Eun Sang Choi, Florida State University, DMR [1] D. de Caro et al., Four Molecular Superconductors.
Type I and Type II superconductivity
Abcd 1 mm Nonlocal effect and microscopic parameters in superconductors Vladimir Kozhevnikov, Tulsa Community College, DMR Magneto-optical images.
National Science Foundation Outcome: Unique vertical aligned nanocomposite thin films with multifunctionalities Impact: Highly strained and ordered nanostructured.
Atomic Layer Deposition (ALD) Conformality in Nanopores Rubloff Research Group Accomplishments.
A magnetically-controlled superconducting switch Norman Birge, Michigan State University, DMR The interplay between superconductivity and ferromagnetism.
National Science Foundation Nanocomposite Magnetoelectric Films Menka Jain, University of Connecticut, DMR Outcome: Dr. Jain and group at UConn.
Electrical Transport in Thin Film Nanostructures Hanno H. Weitering, The University of Tennessee, DMR Competing periodicities in a single atom.
Strain Relaxation in Metamorphic Buffer Layers, Millunchick, DMR Metamorphic buffer layers have a range of lattice constants that relax the stress.
Nanoscale Science and Engineering. Nanoscale Science and Engineering embodies fundamental research and technology development of materials, structures,
National Science Foundation Mechanical Forces That Change Chemistry Brian W. Sheldon, Brown University, DMR Outcome: Research at Brown University.
Direct Measurements of Fundamental Sintering Parameters in Nanoparticles Desiderio Kovar, University of Texas at Austin, DMR Metal nanoparticles.
Quantum Confinement in Nanostructures Confined in: 1 Direction: Quantum well (thin film) Two-dimensional electrons 2 Directions: Quantum wire One-dimensional.
Correlating Anomalous Viscosity of Polymer Films and Their Interfacial Dynamics by the Two-layer Model Ophelia Tsui, Trustees of Boston University, DMR.
RF breakdown in multilayer coatings: a possibility to break the Nb monopoly Alex Gurevich National High Magnetic Field Laboratory, Florida State University.
Electrical Transport in Thin Film Nanostructures Hanno H. Weitering, The University of Tennessee, DMR Understanding and control of electrical conductivity.
Nanoscience and Engineering in Superconductivity (NES - ESF) Mid-term evaluation report presented to the 32nd PESC Plenary Meeting of the ESF Victor V.
Ferroelectric Nanolithography Extended to Flexible Substrates Dawn A. Bonnell, University of Pennsylvania, DMR Recent advances in materials synthesis.
Thin films are basic building blocks for devices. As device size shrinks, quantum effects become important, and traditional thinking in terms of electron.
Nanotechnology (sometimes shortened to "nanotech") is the study of manipulating matter on an atomic and molecular scale. Generally, nanotechnology deals.
Metal-Insulator Transition via Spatially Heterogeneous State Jongsoo Yoon, University of Virginia, DMR Differential resistance (dV/dI) of a 5nm.
Superconductivity and Superfluidity PHYS3430 Professor Bob Cywinski “Superconductivity is perhaps the most remarkable physical property in the Universe”
SCIENCE AND TECHNOLOGY OF SELF-ASSEMBLED MAGNETIC AND SUPERCONDUCTING NANO ARRAYS D. Kumar, North Carolina A & T State University, DMR (a) Cross-section.
Formation of Ge alloy nanocrystals embedded in silica Eugene E. Haller, University of California-Berkeley, DMR Above: High-angle annular dark field.
In-situ Scanning Tunneling Microscopy Study of Bismuth Electrodeposition on Au(100) and Au(111) S.H. Zheng a, C.A. Jeffrey a,b, D.A. Harrington b E. Bohannan.
c18cof01 Magnetic Properties Iron single crystal photomicrographs
LaBella Group cnse.albany.edu Towards an Atomic Scale Understanding of Spin Polarized Electron Transport Towards.
Institute of Physics Founded : 1993 Goals : –fundamental research in physics –graduate study Faculty: 11 Post doctors: 10 Assistant: 4 Students: Master.
Quantum transport in one and two dimensional superconductors Andrey Rogachev, University of Utah, DMR Superconductor-Insulator Transition in 1D.
National Science Foundation Outcome: Epitaxial integration of VO 2 based thin film heterostructures on sapphire and silicon substrates of various orientations.
Status and Highlights of the Applied Superconductivity Center ASC established itself as a fully functioning center within the MagLab Raised $9M.
 Characterizing the Order in 2D Block Copolymer Single Crystals Edward J. Kramer, University of California-Santa Barbara, DMR D single crystal.
Pinning Effect on Niobium Superconducting Thin Films with Artificial Pinning Centers. Lance Horng, J. C. Wu, B. H. Lin, P. C. Kang, J. C. Wang, and C.
CONVECTION : An Activity at Solid Boundary P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi Identify and Compute Gradients.
National Science Foundation Outcome: Unique vertical aligned nanocomposite thin films with multifunctionalities Impact: Highly strained and ordered nanostructured.
Nanowire Thermoelectrics for Energy Conversion
Goals for Today: Syllabus Review
Quantum corral of 48 iron atoms on copper surface
Materials Research Science and Engineering Center DMR 2018
Quantum Mechanical Control of Surface Chemical Reactivity
4-year PhD in Nanoscience
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.
Presentation transcript:

Electrical Transport in Thin Film Nanostructures Hanno H. Weitering, The University of Tennessee, DMR Understanding and control of electrical conductivity through nanostructures requires extensive control of their structure and morphology, which can sometimes be achieved via self assembly. Strong quantum-mechanical size effects enable the formation or self assembly of lead (Pb) atoms into atomically smooth thin films. The resulting films are only a few atom layers thick, while their lateral dimensions easily exceed several millimeters. These films present an ideal geometry for exploring superconductivity at the nanoscale. Even the thinnest Pb films (6 atom layers) are extraordinarily robust superconductors with a superconducting critical temperature T C slightly below that of bulk Pb. The thermodynamic parameters T C and upper critical field H c2 are completely dictated by the physical dimensions and boundary properties of the film. These films support macroscopic critical state screening currents of the order of 4 MA/cm 2 which is about 10% of the theoretical depairing current density. The remarkable robustness of the critical state in reduced dimensions can be quantitatively understood from the known atomic geometry of “quantum growth defects” that are unique for Pb. These quantum defects are strong pinning centers of magnetic flux lines (“vortices”), leading to robust superconductivity. Quantum growth defects in a nine monolayer Pb film showing two- atom layer tall mesas (a) and two-atom layer deep voids (b) in films with tiny excess or shortage of Pb, respectively. The 700x700 nm 2 images are obtained with scanning tunneling microscopy. The diamagnetic screening response of the films is shown in (c) and (d). Quantum mesas produce a “soft” hysteresis loop (c), while quantum voids produce a “hard” hysteresis loop. The latter indicates strong vortex pinning.

Electrical Transport in Thin Film Nanostructures Hanno H. Weitering, The University of Tennessee, DMR Education: Two graduate students (Murat Ozer and Eun Ju Moon) and one postdoc (Jiandong Guo) contributed to the experimental work. Murat Ozer started his dissertation research in the Fall of 2002 and is expected to obtain his Ph.D. degree in December His thesis describes formation and superconducting properties of ultrathin lead films. 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. Dr. Jiandong Guo pioneered optical studies of thin film nanostructures. He is leaving the group in October 2005 to become a junior physics professor at the Chinese Academy of Sciences in Beijing. 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.”