1
|
Zheng Z, Li H, Wang L, Xu X, Li E. Study on the Transverse Vibration Characteristics of Phenine Nanotubes. NANOMATERIALS (BASEL, SWITZERLAND) 2025; 15:300. [PMID: 39997863 PMCID: PMC11858585 DOI: 10.3390/nano15040300] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 01/14/2025] [Revised: 02/10/2025] [Accepted: 02/14/2025] [Indexed: 02/26/2025]
Abstract
Phenine nanotubes are tubular molecular structures with periodic hexatomic vacancies. The holes formed by these vacancies have a significant impact on their electrical, mechanical, and other properties. In this paper, the transverse vibration characteristics of phenine nanotubes (PNTs) are investigated by molecular dynamics (MD) simulation and continuum mechanics. A geometrically equivalent beam model is established for describing the geometric characteristics of holes. The effective static mechanical parameters of PNTs used in the proposed model are calibrated by MD simulations. The first four-order natural frequencies of PNTs are predicted by MD simulations and geometrically equivalent beam models. The results indicate that the geometrically equivalent beam model performs well in describing the transverse vibration characteristics of PNTs. Furthermore, the applicability ranges of geometrically equivalent beam models are discussed. This study offers valuable insights into the transverse vibration characteristics of porous nanostructure, which would be beneficial for the design of nanoscale mechanical resonators.
Collapse
Affiliation(s)
- Zhuoqun Zheng
- State Key Laboratory of Mechanics and Control for Aerospace Structures, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China
| | - Han Li
- AVIC Xinxiang Aviation Industry (Group) Co., Ltd., Xinxiang 453049, China
| | - Lifeng Wang
- State Key Laboratory of Mechanics and Control for Aerospace Structures, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China
| | - Xu Xu
- College of Mathematics, Jilin University, Changchun 130012, China
- Key Laboratory of Symbolic Computation and Knowledge Engineering of Ministry of Education, Jilin University, Changchun 130012, China
| | - Eric Li
- School of Computing, Engineering & Digital Technologies, Teesside University, Middlesbrough TS1 3BX, UK
| |
Collapse
|
2
|
Tabatabaei S, Priyadarsi P, Singh N, Sahafi P, Tay D, Jordan A, Budakian R. Large-enhancement nanoscale dynamic nuclear polarization near a silicon nanowire surface. SCIENCE ADVANCES 2024; 10:eado9059. [PMID: 39167648 PMCID: PMC11338224 DOI: 10.1126/sciadv.ado9059] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 02/26/2024] [Accepted: 07/12/2024] [Indexed: 08/23/2024]
Abstract
Dynamic nuclear polarization (DNP) has revolutionized the field of nuclear magnetic resonance spectroscopy, expanding its reach and capabilities to investigate diverse materials, biomolecules, and complex dynamic processes. Bringing high-efficiency DNP to the nanometer scale would open exciting avenues for studying nanoscale nuclear spin ensembles, such as single biomolecules, virus particles, and condensed matter systems. Combining pulsed DNP with nanoscale force-detected magnetic resonance measurements, we demonstrated a 100-fold enhancement in the Boltzmann polarization of proton spins in nanoscale sugar droplets at 6 kelvin and 0.33 tesla. Crucially, this enhancement corresponds to a factor of 200 reduction in the averaging time compared to measurements that rely on the detection of statistical fluctuations in nanoscale nuclear spin ensembles. These results substantially advance the capabilities of force-detected magnetic resonance detection as a practical tool for nanoscale imaging.
Collapse
Affiliation(s)
- Sahand Tabatabaei
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON, Canada N2L3G1
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON, Canada N2L3G1
| | - Pritam Priyadarsi
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON, Canada N2L3G1
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON, Canada N2L3G1
| | - Namanish Singh
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON, Canada N2L3G1
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON, Canada N2L3G1
| | - Pardis Sahafi
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON, Canada N2L3G1
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON, Canada N2L3G1
| | - Daniel Tay
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON, Canada N2L3G1
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON, Canada N2L3G1
| | - Andrew Jordan
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON, Canada N2L3G1
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON, Canada N2L3G1
| | - Raffi Budakian
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON, Canada N2L3G1
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON, Canada N2L3G1
| |
Collapse
|
3
|
Budakian R, Finkler A, Eichler A, Poggio M, Degen CL, Tabatabaei S, Lee I, Hammel PC, Eugene SP, Taminiau TH, Walsworth RL, London P, Bleszynski Jayich A, Ajoy A, Pillai A, Wrachtrup J, Jelezko F, Bae Y, Heinrich AJ, Ast CR, Bertet P, Cappellaro P, Bonato C, Altmann Y, Gauger E. Roadmap on nanoscale magnetic resonance imaging. NANOTECHNOLOGY 2024; 35:412001. [PMID: 38744268 DOI: 10.1088/1361-6528/ad4b23] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 05/02/2023] [Accepted: 05/14/2024] [Indexed: 05/16/2024]
Abstract
The field of nanoscale magnetic resonance imaging (NanoMRI) was started 30 years ago. It was motivated by the desire to image single molecules and molecular assemblies, such as proteins and virus particles, with near-atomic spatial resolution and on a length scale of 100 nm. Over the years, the NanoMRI field has also expanded to include the goal of useful high-resolution nuclear magnetic resonance (NMR) spectroscopy of molecules under ambient conditions, including samples up to the micron-scale. The realization of these goals requires the development of spin detection techniques that are many orders of magnitude more sensitive than conventional NMR and MRI, capable of detecting and controlling nanoscale ensembles of spins. Over the years, a number of different technical approaches to NanoMRI have emerged, each possessing a distinct set of capabilities for basic and applied areas of science. The goal of this roadmap article is to report the current state of the art in NanoMRI technologies, outline the areas where they are poised to have impact, identify the challenges that lie ahead, and propose methods to meet these challenges. This roadmap also shows how developments in NanoMRI techniques can lead to breakthroughs in emerging quantum science and technology applications.
Collapse
Affiliation(s)
- Raffi Budakian
- Department of Physics and Astronomy, University of Waterloo, Waterloo, Canada
- Institute for Quantum Computing, University of Waterloo, Waterloo, Canada
| | - Amit Finkler
- Department of Chemical and Biological Physics, Weizmann Institute of Science, Rehovot 7610001, Israel
| | - Alexander Eichler
- Institute for Solid State Physics, ETH Zurich, Otto-Stern-Weg 1, 8093 Zurich, Switzerland
| | - Martino Poggio
- Department of Physics and Swiss Nanoscience Institute, University of Basel, 4056 Basel, Switzerland
| | - Christian L Degen
- Institute for Solid State Physics, ETH Zurich, Otto-Stern-Weg 1, 8093 Zurich, Switzerland
| | - Sahand Tabatabaei
- Department of Physics and Astronomy, University of Waterloo, Waterloo, Canada
- Institute for Quantum Computing, University of Waterloo, Waterloo, Canada
| | - Inhee Lee
- Department of Physics, The Ohio State University, Columbus, OH 43210, United States of America
| | - P Chris Hammel
- Department of Physics, The Ohio State University, Columbus, OH 43210, United States of America
| | - S Polzik Eugene
- Niels Bohr Institute, University of Copenhagen, 17, Copenhagen, 2100, Denmark
| | - Tim H Taminiau
- QuTech and Kavli Institute of Nanoscience, Delft University of Technology, Netherlands
| | - Ronald L Walsworth
- University of Maryland 2218 Kim Engineering Building, College Park, MD 20742, United States of America
| | - Paz London
- Department of Physics, University of California, Santa Barbara, CA 93106, United States of America
| | - Ania Bleszynski Jayich
- Department of Physics, University of California, Santa Barbara, CA 93106, United States of America
| | - Ashok Ajoy
- Department of Chemistry, University of California, Berkeley, CA 97420, United States of America
- Chemical Sciences Division, Lawrence Berkeley National Laboratory, 1 Cyclotron Rd, Berkeley, CA 94720, United States of America
- Quantum Information Science Program, CIFAR, 661 University Ave., Toronto, ON M5G 1M1, Canada
| | - Arjun Pillai
- Department of Chemistry, University of California, Berkeley, CA 97420, United States of America
| | - Jörg Wrachtrup
- 3. Physikalisches Institut, University of Stuttgart, Pfaffenwaldring 57, 70569 Stuttgart, Germany
- Max Planck Institute for Solid State Research, Heisenbergstraße 1, 70569 Stuttgart, Germany
| | - Fedor Jelezko
- Institute of Quantum Optics, Ulm University, Ulm, 89081, Germany
| | - Yujeong Bae
- Center for Quantum Nanoscience, Institute for Basic Science, Seoul 03760, Republic of Korea
- Department of Physics, Ewha Womans University, Seoul 03760, Republic of Korea
| | - Andreas J Heinrich
- Center for Quantum Nanoscience, Institute for Basic Science, Seoul 03760, Republic of Korea
- Department of Physics, Ewha Womans University, Seoul 03760, Republic of Korea
| | - Christian R Ast
- Max Planck Institute for Solid State Research, Heisenbergstraße 1, 70569 Stuttgart, Germany
| | - Patrice Bertet
- Université Paris-Saclay, CEA, CNRS, SPEC, 91191 Gif-sur-Yvette, France
| | - Paola Cappellaro
- Massachusetts Institute of Technology, 77 Massachusetts Ave, Cambridge, MA 02139, United States of America
| | - Cristian Bonato
- SUPA, Institute of Photonics and Quantum Sciences, School of Engineering and Physical Sciences, HeriotWatt University, Edinburgh EH14 4AS, United Kingdom
| | - Yoann Altmann
- Institute of Signals, Sensors and Systems, School of Engineering and Physical Sciences, Heriot-Watt University, Edinburgh EH14 4AS, United Kingdom
| | - Erik Gauger
- SUPA, Institute of Photonics and Quantum Sciences, School of Engineering and Physical Sciences, HeriotWatt University, Edinburgh EH14 4AS, United Kingdom
| |
Collapse
|
4
|
Mattiat H, Schneider L, Reiser P, Poggio M, Sahafi P, Jordan A, Budakian R, Averyanov DV, Sokolov IS, Taldenkov AN, Parfenov OE, Kondratev OA, Tokmachev AM, Storchak VG. Mapping the phase-separated state in a 2D magnet. NANOSCALE 2024; 16:5302-5312. [PMID: 38372414 DOI: 10.1039/d3nr06550b] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 02/20/2024]
Abstract
Intrinsic 2D magnets have recently been established as a playground for studies on fundamentals of magnetism, quantum phases, and spintronic applications. The inherent instability at low dimensionality often results in coexistence and/or competition of different magnetic orders. Such instability of magnetic ordering may manifest itself as phase-separated states. In 4f 2D materials, magnetic phase separation is expressed in various experiments; however, the experimental evidence is circumstantial. Here, we employ a high-sensitivity MFM technique to probe the spatial distribution of magnetic states in the paradigmatic 4f 2D ferromagnet EuGe2. Below the ferromagnetic transition temperature, we discover the phase-separated state and follow its evolution with temperature and magnetic field. The characteristic length-scale of magnetic domains amounts to hundreds of nanometers. These observations strongly shape our understanding of the magnetic states in 2D materials at the monolayer limit and contribute to engineering of ultra-compact spintronics.
Collapse
Affiliation(s)
- Hinrich Mattiat
- Department of Physics & Swiss Nanoscience Institute, University of Basel, 4056 Basel, Switzerland.
| | - Lukas Schneider
- Department of Physics & Swiss Nanoscience Institute, University of Basel, 4056 Basel, Switzerland.
| | - Patrick Reiser
- Department of Physics & Swiss Nanoscience Institute, University of Basel, 4056 Basel, Switzerland.
| | - Martino Poggio
- Department of Physics & Swiss Nanoscience Institute, University of Basel, 4056 Basel, Switzerland.
| | - Pardis Sahafi
- Department of Physics and Astronomy & Institute for Quantum Computing, University of Waterloo, Waterloo, ON N2L 3G1, Canada
| | - Andrew Jordan
- Department of Physics and Astronomy & Institute for Quantum Computing, University of Waterloo, Waterloo, ON N2L 3G1, Canada
| | - Raffi Budakian
- Department of Physics and Astronomy & Institute for Quantum Computing, University of Waterloo, Waterloo, ON N2L 3G1, Canada
| | - Dmitry V Averyanov
- National Research Center "Kurchatov Institute", Kurchatov Sq. 1, 123182 Moscow, Russia.
| | - Ivan S Sokolov
- National Research Center "Kurchatov Institute", Kurchatov Sq. 1, 123182 Moscow, Russia.
| | - Alexander N Taldenkov
- National Research Center "Kurchatov Institute", Kurchatov Sq. 1, 123182 Moscow, Russia.
| | - Oleg E Parfenov
- National Research Center "Kurchatov Institute", Kurchatov Sq. 1, 123182 Moscow, Russia.
| | - Oleg A Kondratev
- National Research Center "Kurchatov Institute", Kurchatov Sq. 1, 123182 Moscow, Russia.
| | - Andrey M Tokmachev
- National Research Center "Kurchatov Institute", Kurchatov Sq. 1, 123182 Moscow, Russia.
| | - Vyacheslav G Storchak
- National Research Center "Kurchatov Institute", Kurchatov Sq. 1, 123182 Moscow, Russia.
| |
Collapse
|
5
|
Escobar J, Molina J, Gil-Santos E, Ruz JJ, Malvar Ó, Kosaka PM, Tamayo J, San Paulo Á, Calleja M. Nanomechanical Sensing for Mass Flow Control in Nanowire-Based Open Nanofluidic Systems. ACS NANO 2023; 17:21044-21055. [PMID: 37903505 PMCID: PMC10655260 DOI: 10.1021/acsnano.3c04020] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 05/05/2023] [Revised: 10/16/2023] [Accepted: 10/19/2023] [Indexed: 11/01/2023]
Abstract
Open nanofluidic systems, where liquids flow along the outer surface of nanoscale structures, provide otherwise unfeasible capabilities for extremely miniaturized liquid handling applications. A critical step toward fully functional applications is to obtain quantitative mass flow control. We demonstrate the application of nanomechanical sensing for this purpose by integrating voltage-driven liquid flow along nanowire open channels with mass detection based on flexural resonators. This approach is validated by assembling the nanowires with microcantilever resonators, enabling high-precision control of larger flows, and by using the nanowires as resonators themselves, allowing extremely small liquid volume handling. Both implementations are demonstrated by characterizing voltage-driven flow of ionic liquids along the surface of the nanowires. We find a voltage range where mass flow rate follows a nonlinear monotonic increase, establishing a steady flow regime for which we show mass flow control at rates from below 1 ag/s to above 100 fg/s and precise liquid handling down to the zeptoliter scale. The observed behavior of mass flow rate is consistent with a voltage-induced transition from static wetting to dynamic spreading as the mechanism underlying liquid transport along the nanowires.
Collapse
Affiliation(s)
- Javier
E. Escobar
- Instituto
de Micro y Nanotecnología (IMN-CNM, CSIC), Isaac Newton 8, 28760 Tres Cantos, Madrid, Spain
| | - Juan Molina
- Instituto
de Micro y Nanotecnología (IMN-CNM, CSIC), Isaac Newton 8, 28760 Tres Cantos, Madrid, Spain
| | - Eduardo Gil-Santos
- Instituto
de Micro y Nanotecnología (IMN-CNM, CSIC), Isaac Newton 8, 28760 Tres Cantos, Madrid, Spain
| | - José J. Ruz
- Instituto
de Micro y Nanotecnología (IMN-CNM, CSIC), Isaac Newton 8, 28760 Tres Cantos, Madrid, Spain
| | - Óscar Malvar
- Instituto
de Micro y Nanotecnología (IMN-CNM, CSIC), Isaac Newton 8, 28760 Tres Cantos, Madrid, Spain
| | - Priscila M. Kosaka
- Instituto
de Micro y Nanotecnología (IMN-CNM, CSIC), Isaac Newton 8, 28760 Tres Cantos, Madrid, Spain
| | - Javier Tamayo
- Instituto
de Micro y Nanotecnología (IMN-CNM, CSIC), Isaac Newton 8, 28760 Tres Cantos, Madrid, Spain
| | - Álvaro San Paulo
- Instituto
de Micro y Nanotecnología (IMN-CNM, CSIC), Isaac Newton 8, 28760 Tres Cantos, Madrid, Spain
| | - Montserrat Calleja
- Instituto
de Micro y Nanotecnología (IMN-CNM, CSIC), Isaac Newton 8, 28760 Tres Cantos, Madrid, Spain
| |
Collapse
|
6
|
Jasulaneca L, Poplausks R, Prikulis J, Dzene E, Yager T, Erts D. Characterization of Mechanical Oscillations in Bismuth Selenide Nanowires at Low Temperatures. MICROMACHINES 2023; 14:1910. [PMID: 37893347 PMCID: PMC10609109 DOI: 10.3390/mi14101910] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 07/31/2023] [Revised: 09/29/2023] [Accepted: 10/05/2023] [Indexed: 10/29/2023]
Abstract
A single transistor preamplifier circuit was designed to facilitate electrical detection of mechanical oscillations in nanoelectromechanical systems (NEMSs) at low temperatures. The amplifier was integrated in the close vicinity of the nanowire inside the cryostat to minimize cabling load and interference. The function of the circuit was impedance conversion for current flow measurements in NEMSs with a high internal resistance. The circuit was tested to operate at temperatures as low as 5 K and demonstrated the ability to detect oscillations in double-clamped bismuth selenide nanowires upon excitation by a 0.1 MHz-10 MHz AC signal applied to a mechanically separated gate electrode. A strong resonance frequency dependency on temperature was observed. A relatively weak shift in the oscillation amplitude and resonance frequency was measured when a DC bias voltage was applied to the gate electrode at a constant temperature.
Collapse
Affiliation(s)
- Liga Jasulaneca
- Institute of Chemical Physics, University of Latvia, 19 Raina Blvd., LV-1586 Riga, Latvia; (R.P.); (J.P.); (E.D.); (D.E.)
| | - Raimonds Poplausks
- Institute of Chemical Physics, University of Latvia, 19 Raina Blvd., LV-1586 Riga, Latvia; (R.P.); (J.P.); (E.D.); (D.E.)
| | - Juris Prikulis
- Institute of Chemical Physics, University of Latvia, 19 Raina Blvd., LV-1586 Riga, Latvia; (R.P.); (J.P.); (E.D.); (D.E.)
| | - Elza Dzene
- Institute of Chemical Physics, University of Latvia, 19 Raina Blvd., LV-1586 Riga, Latvia; (R.P.); (J.P.); (E.D.); (D.E.)
| | - Tom Yager
- Institute of Solid State Physics, University of Latvia, 8 Kengaraga Str., LV-1063 Riga, Latvia;
| | - Donats Erts
- Institute of Chemical Physics, University of Latvia, 19 Raina Blvd., LV-1586 Riga, Latvia; (R.P.); (J.P.); (E.D.); (D.E.)
- Faculty of Chemistry, University of Latvia, 1 Jelgavas Str., LV-1004 Riga, Latvia
| |
Collapse
|
7
|
Xu B, Zhang P, Zhu J, Liu Z, Eichler A, Zheng XQ, Lee J, Dash A, More S, Wu S, Wang Y, Jia H, Naik A, Bachtold A, Yang R, Feng PXL, Wang Z. Nanomechanical Resonators: Toward Atomic Scale. ACS NANO 2022; 16:15545-15585. [PMID: 36054880 PMCID: PMC9620412 DOI: 10.1021/acsnano.2c01673] [Citation(s) in RCA: 34] [Impact Index Per Article: 11.3] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 03/11/2022] [Accepted: 08/12/2022] [Indexed: 06/15/2023]
Abstract
The quest for realizing and manipulating ever smaller man-made movable structures and dynamical machines has spurred tremendous endeavors, led to important discoveries, and inspired researchers to venture to previously unexplored grounds. Scientific feats and technological milestones of miniaturization of mechanical structures have been widely accomplished by advances in machining and sculpturing ever shrinking features out of bulk materials such as silicon. With the flourishing multidisciplinary field of low-dimensional nanomaterials, including one-dimensional (1D) nanowires/nanotubes and two-dimensional (2D) atomic layers such as graphene/phosphorene, growing interests and sustained effort have been devoted to creating mechanical devices toward the ultimate limit of miniaturization─genuinely down to the molecular or even atomic scale. These ultrasmall movable structures, particularly nanomechanical resonators that exploit the vibratory motion in these 1D and 2D nano-to-atomic-scale structures, offer exceptional device-level attributes, such as ultralow mass, ultrawide frequency tuning range, broad dynamic range, and ultralow power consumption, thus holding strong promises for both fundamental studies and engineering applications. In this Review, we offer a comprehensive overview and summary of this vibrant field, present the state-of-the-art devices and evaluate their specifications and performance, outline important achievements, and postulate future directions for studying these miniscule yet intriguing molecular-scale machines.
Collapse
Affiliation(s)
- Bo Xu
- Institute
of Fundamental and Frontier Sciences, University
of Electronic Science and Technology of China, Chengdu610054, China
| | - Pengcheng Zhang
- University
of Michigan−Shanghai Jiao Tong University Joint Institute, Shanghai Jiao Tong University, Shanghai200240, China
| | - Jiankai Zhu
- Institute
of Fundamental and Frontier Sciences, University
of Electronic Science and Technology of China, Chengdu610054, China
| | - Zuheng Liu
- University
of Michigan−Shanghai Jiao Tong University Joint Institute, Shanghai Jiao Tong University, Shanghai200240, China
| | | | - Xu-Qian Zheng
- Department
of Electrical and Computer Engineering, Herbert Wertheim College of
Engineering, University of Florida, Gainesville, Florida32611, United States
- College
of Integrated Circuit Science and Engineering, Nanjing University of Posts and Telecommunications, Nanjing210023, China
| | - Jaesung Lee
- Department
of Electrical and Computer Engineering, Herbert Wertheim College of
Engineering, University of Florida, Gainesville, Florida32611, United States
- Department
of Electrical and Computer Engineering, University of Texas at El Paso, El Paso, Texas79968, United States
| | - Aneesh Dash
- Centre
for
Nano Science and Engineering, Indian Institute
of Science, Bangalore560012, Karnataka, India
| | - Swapnil More
- Centre
for
Nano Science and Engineering, Indian Institute
of Science, Bangalore560012, Karnataka, India
| | - Song Wu
- Institute
of Fundamental and Frontier Sciences, University
of Electronic Science and Technology of China, Chengdu610054, China
| | - Yanan Wang
- Department
of Electrical and Computer Engineering, Herbert Wertheim College of
Engineering, University of Florida, Gainesville, Florida32611, United States
- Department
of Electrical and Computer Engineering, University of Nebraska-Lincoln, Lincoln, Nebraska68588, United States
| | - Hao Jia
- Shanghai
Institute of Microsystem and Information Technology, Chinese Academy
of Sciences, Shanghai200050, China
| | - Akshay Naik
- Centre
for
Nano Science and Engineering, Indian Institute
of Science, Bangalore560012, Karnataka, India
| | - Adrian Bachtold
- ICFO-Institut
de Ciencies Fotoniques, The Barcelona Institute
of Science and Technology, Castelldefels, Barcelona08860, Spain
| | - Rui Yang
- University
of Michigan−Shanghai Jiao Tong University Joint Institute, Shanghai Jiao Tong University, Shanghai200240, China
- School of
Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, Shanghai200240, China
| | - Philip X.-L. Feng
- Department
of Electrical and Computer Engineering, Herbert Wertheim College of
Engineering, University of Florida, Gainesville, Florida32611, United States
| | - Zenghui Wang
- Institute
of Fundamental and Frontier Sciences, University
of Electronic Science and Technology of China, Chengdu610054, China
- State
Key Laboratory of Electronic Thin Films and Integrated Devices, University
of Electronic Science and Technology of China, Chengdu610054, China
| |
Collapse
|
8
|
Haas H, Tabatabaei S, Rose W, Sahafi P, Piscitelli M, Jordan A, Priyadarsi P, Singh N, Yager B, Poole PJ, Dalacu D, Budakian R. Nuclear magnetic resonance diffraction with subangstrom precision. Proc Natl Acad Sci U S A 2022; 119:e2209213119. [PMID: 36161956 PMCID: PMC9546613 DOI: 10.1073/pnas.2209213119] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/28/2022] [Accepted: 08/31/2022] [Indexed: 12/02/2022] Open
Abstract
We have combined ultrasensitive force-based spin detection with high-fidelity spin control to achieve NMR diffraction (NMRd) measurement of ~2 million [Formula: see text]P spins in a [Formula: see text] volume of an indium-phosphide (InP) nanowire. NMRd is a technique originally proposed for studying the structure of periodic arrangements of spins, with complete access to the spectroscopic capabilities of NMR. We describe two experiments that realize NMRd detection with subangstrom precision. In the first experiment, we encode a nanometer-scale spatial modulation of the z-axis magnetization of [Formula: see text]P spins and detect the period and position of the modulation with a precision of <0.8 Å. In the second experiment, we demonstrate an interferometric technique, utilizing NMRd, to detect an angstrom-scale displacement of the InP sample with a precision of 0.07 Å. The diffraction-based techniques developed in this work extend the Fourier-encoding capabilities of NMR to the angstrom scale and demonstrate the potential of NMRd as a tool for probing the structure and dynamics of nanocrystalline materials.
Collapse
Affiliation(s)
- Holger Haas
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON N2L3G1, Canada
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON N2L3G1, Canada
| | - Sahand Tabatabaei
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON N2L3G1, Canada
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON N2L3G1, Canada
| | - William Rose
- Department of Physics, University of Illinois at Urbana–Champaign, Urbana, IL 61801
| | - Pardis Sahafi
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON N2L3G1, Canada
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON N2L3G1, Canada
| | - Michèle Piscitelli
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON N2L3G1, Canada
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON N2L3G1, Canada
| | - Andrew Jordan
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON N2L3G1, Canada
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON N2L3G1, Canada
| | - Pritam Priyadarsi
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON N2L3G1, Canada
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON N2L3G1, Canada
| | - Namanish Singh
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON N2L3G1, Canada
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON N2L3G1, Canada
| | - Ben Yager
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON N2L3G1, Canada
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON N2L3G1, Canada
| | - Philip J. Poole
- Advanced Electronics and Photonics Research Centre, National Research Council of Canada, Ottawa, ON K1A 0R6, Canada
| | - Dan Dalacu
- Advanced Electronics and Photonics Research Centre, National Research Council of Canada, Ottawa, ON K1A 0R6, Canada
| | - Raffi Budakian
- Department of Physics and Astronomy, University of Waterloo, Waterloo, ON N2L3G1, Canada
- Institute for Quantum Computing, University of Waterloo, Waterloo, ON N2L3G1, Canada
| |
Collapse
|
9
|
Molina J, Escobar JE, Ramos D, Gil-Santos E, Ruz JJ, Tamayo J, San Paulo Á, Calleja M. High Dynamic Range Nanowire Resonators. NANO LETTERS 2021; 21:6617-6624. [PMID: 34288677 PMCID: PMC8361434 DOI: 10.1021/acs.nanolett.1c02056] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 05/25/2021] [Revised: 07/09/2021] [Indexed: 06/13/2023]
Abstract
Dynamic range quantifies the linear operation regime available in nanomechanical resonators. Nonlinearities dominate the response of flexural beams in the limit of very high aspect ratio and very small diameter, which leads to expectation of low dynamic range for nanowire resonators in general. However, the highest achievable dynamic range for nanowire resonators with practical dimensions remains to be determined. We report dynamic range measurements on singly clamped silicon nanowire resonators reaching remarkably high values of up to 90 dB obtained with a simple harmonic actuation scheme. We explain these measurements by a comprehensive theoretical examination of dynamic range in singly clamped flexural beams including the effect of tapering, a usual feature of semiconductor nanowires. Our analysis reveals the nanowire characteristics required for broad linear operation, and given the relationship between dynamic range and mass sensing performance, it also enables analytical determination of mass detection limits, reaching atomic-scale resolution for feasible nanowires.
Collapse
|
10
|
Tepsic S, Gruber G, Møller CB, Magén C, Belardinelli P, Hernández ER, Alijani F, Verlot P, Bachtold A. Interrelation of Elasticity and Thermal Bath in Nanotube Cantilevers. PHYSICAL REVIEW LETTERS 2021; 126:175502. [PMID: 33988423 DOI: 10.1103/physrevlett.126.175502] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 01/14/2021] [Accepted: 03/16/2021] [Indexed: 06/12/2023]
Abstract
We report the first study on the thermal behavior of the stiffness of individual carbon nanotubes, which is achieved by measuring the resonance frequency of their fundamental mechanical bending modes. We observe a reduction of the Young's modulus over a large temperature range with a slope -(173±65) ppm/K in its relative shift. These findings are reproduced by two different theoretical models based on the thermal dynamics of the lattice. These results reveal how the measured fundamental bending modes depend on the phonons in the nanotube via the Young's modulus. An alternative description based on the coupling between the measured mechanical modes and the phonon thermal bath in the Akhiezer limit is discussed.
Collapse
Affiliation(s)
- S Tepsic
- ICFO-Institut De Ciencies Fotoniques, The Barcelona Institute of Science and Technology, 08860 Castelldefels (Barcelona), Spain
| | - G Gruber
- ICFO-Institut De Ciencies Fotoniques, The Barcelona Institute of Science and Technology, 08860 Castelldefels (Barcelona), Spain
| | - C B Møller
- ICFO-Institut De Ciencies Fotoniques, The Barcelona Institute of Science and Technology, 08860 Castelldefels (Barcelona), Spain
| | - C Magén
- Instituto de Nanociencia y Materiales de Aragón (INMA), CSIC-Universidad de Zaragoza, 50009 Zaragoza, Spain
- Laboratorio de Microscopías Avanzadas (LMA), Universidad de Zaragoza, 50018 Zaragoza, Spain
| | - P Belardinelli
- DICEA, Polytechnic University of Marche, 60131 Ancona, Italy
| | - E R Hernández
- Instituto de Ciencia de Materiales de Madrid (ICMM-CSIC), 28049 Madrid, Spain
| | - F Alijani
- Department of Precision and Microsystems Engineering, 3ME, Mekelweg 2, (2628 CD) Delft, The Netherlands
| | - P Verlot
- School of Physics and Astronomy-The University of Nottingham, University Park, Nottingham NG7 2RD, United Kingdom
| | - A Bachtold
- ICFO-Institut De Ciencies Fotoniques, The Barcelona Institute of Science and Technology, 08860 Castelldefels (Barcelona), Spain
| |
Collapse
|
11
|
Molina J, Ramos D, Gil-Santos E, Escobar JE, Ruz JJ, Tamayo J, San Paulo Á, Calleja M. Optical Transduction for Vertical Nanowire Resonators. NANO LETTERS 2020; 20:2359-2369. [PMID: 32191041 PMCID: PMC7146857 DOI: 10.1021/acs.nanolett.9b04909] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.4] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 11/26/2019] [Revised: 02/05/2020] [Indexed: 05/26/2023]
Abstract
We describe an optical transduction mechanism to measure the flexural mode vibrations of vertically aligned nanowires on a flat substrate with high sensitivity, linearity, and ease of implementation. We demonstrate that the light reflected from the substrate when a laser beam strikes it parallel to the nanowires is modulated proportionally to their vibration, so that measuring such modulation provides a highly efficient resonance readout. This mechanism is applicable to single nanowires or arrays without specific requirements regarding their geometry or array pattern, and no fabrication process besides the nanowire generation is required. We show how to optimize the performance of this mechanism by characterizing the split flexural modes of vertical silicon nanowires in their full dynamic range and up to the fifth mode order. The presented transduction approach is relevant for any application of nanowire resonators, particularly for integrating nanomechanical sensing in functional substrates based on vertical nanowires for biological applications.
Collapse
Affiliation(s)
- Juan Molina
- Instituto de Micro y Nanotecnología
(IMN-CNM, CSIC), Isaac Newton 8, Tres Cantos, 28760 Madrid, Spain
| | - Daniel Ramos
- Instituto de Micro y Nanotecnología
(IMN-CNM, CSIC), Isaac Newton 8, Tres Cantos, 28760 Madrid, Spain
| | - Eduardo Gil-Santos
- Instituto de Micro y Nanotecnología
(IMN-CNM, CSIC), Isaac Newton 8, Tres Cantos, 28760 Madrid, Spain
| | - Javier E. Escobar
- Instituto de Micro y Nanotecnología
(IMN-CNM, CSIC), Isaac Newton 8, Tres Cantos, 28760 Madrid, Spain
| | - José J. Ruz
- Instituto de Micro y Nanotecnología
(IMN-CNM, CSIC), Isaac Newton 8, Tres Cantos, 28760 Madrid, Spain
| | - Javier Tamayo
- Instituto de Micro y Nanotecnología
(IMN-CNM, CSIC), Isaac Newton 8, Tres Cantos, 28760 Madrid, Spain
| | - Álvaro San Paulo
- Instituto de Micro y Nanotecnología
(IMN-CNM, CSIC), Isaac Newton 8, Tres Cantos, 28760 Madrid, Spain
| | - Montserrat Calleja
- Instituto de Micro y Nanotecnología
(IMN-CNM, CSIC), Isaac Newton 8, Tres Cantos, 28760 Madrid, Spain
| |
Collapse
|