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Fundamentals of Nanomechanical Resonators

Fundamentals of Nanomechanical Resonators
Author: Silvan Schmid
Publisher: Springer
Total Pages: 183
Release: 2016-06-21
Genre: Technology & Engineering
ISBN: 3319286919

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This authoritative book introduces and summarizes the latest models and skills required to design and fabricate nanomechanical resonators with a focus on nanomechanical sensing. It also establishes the theoretical foundation for courses on micro and nanomechanics. This book takes an applied approach to nanomechanics, providing a complete set of mechanical models, including strings and membrane resonators. Also discussed are quality factors, noise issues, transduction techniques, nanomechanical sensing, fabrication techniques, and applications for all common nanomechanical resonator types. It is an ideal book for students and researchers working with micro and nanomechanical resonators.


Fabrication and Characterization of Nanomechanical Resonators as Highly Sensitive Mass Sensors

Fabrication and Characterization of Nanomechanical Resonators as Highly Sensitive Mass Sensors
Author: Vahid Qaradaghi
Publisher:
Total Pages:
Release: 2018
Genre: Carbon nanotubes
ISBN:

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Nanoelectromechanical (NEM) resonators have been used to detect masses of organic or inorganic particles in nanoscale or even atomic level. A reduction in the resonator mass can increase its mass sensitivity (frequency shift per loaded mass). However, the operation of most small resonators is restricted to vacuum or air since operation in liquid sharply decreases their quality factor (Q) due to the excessive damping resulting from liquid viscosity. Q factor is a dimensionless parameter that describes how underdamped an oscillator or resonator is, and higher Q indicates a lower rate of energy loss relative to the stored energy of the resonator. Typically, large size resonators such as Quartz Crystal Microbalance (QCM) are used for mass detection in liquid to preserve a high Q factor that determines the resolution of measurements. However, as it was mentioned earlier, such resonators cannot offer high sensitivity due to their relatively large size and mass. Therefore, highly-sensitive resonators capable of real-time mass measurement with high Q both in air and liquid currently do not exist. Thermal piezoresistive disk resonator surface merely slides alongside the solid-liquid interface in the rotational mode, as opposed to paddling against the surrounding liquid offering high Q. In this dissertation, thermal-piezoresistive disk resonators with much smaller dimensions in the deep submicron range have been fabricated using electron beam lithography (EBL), and the effect of scaling on mass sensitivity, power consumption and quality factor (Q) is investigated. Disk resonators with diameter ranging from 2μm to 20μm with thermal actuator beams as narrow as 35nm have been fabricated via electron beam lithography. Mass sensitivity of disk resonators was characterized in air by formation of a self-assembled monolayer of hexa-methyl-disilazane (HMDS) on the surfaces. Frequency shifts as high as 318 Hz were measured for a calculated deposited mass of one attogram using a 2μm diameter disk resonator resonating at 221MHz. Operation in liquid was characterized by exposing a 20μm disk resonator to a 10mM solution of mercaptohexanol (MCH) diluted in ethyl alcohol (ethanol). For this experiment, frequency shift of 20 kHz for 2.8 pg of added MCH mass was obtained. In conventional rotational mode disk resonators, as the dimensions scale down, the mechanical losses including anchor loss increase. This adversely affects the detection of the resonance mode at higher frequencies. To alleviate this issue, donut-shaped resonators have been proposed potentially offering higher Qs while resonating at higher frequencies. Mass sensitivity of donut resonators with different sizes has been investigated with deposited 10nm gold nanoparticles (AuNPs) as added mass showing mass sensitivity of 36 Hz/attogram (712 Hz/AuNp) in air characterization. Due to the reduction of the surface area, the probability of adsorption of molecules or particulates of interest onto the NEM resonator surfaces diminishes. To address this issue, forests of multiwall carbon nanotubes (MWCNTs) have been used to enhance the effective surface area, which allows detection of much lower concentrations of analytes. Using this approach, average effective surface area enhancement as high as 9 times for organic and inorganic nanoparticles was demonstrated.


Nanomechanical Detection of Electron Spin Flip

Nanomechanical Detection of Electron Spin Flip
Author: Guiti Zolfagharkhani
Publisher:
Total Pages: 218
Release: 2008
Genre:
ISBN:

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Abstract: The focus of this thesis is the detection of mechanical torque generated by electron spin flip in a ferromagnetic-nonmagnetic nanowire attached to an integrated nanoscale torsion resonator. We report direct measurement of this mechanical torque with a sensitivity of 0.1 pN-nm/[Special characters omitted.] . The level of torque sensitivity of our device is an order of magnitude better than typical results in literature. Our approach competes favorably with optical-tweezer detection methods and may enable ultrasensitive measurements of untwisting of DNA and other torque generating molecules, as well as nanomechanical tests of spintronics effects. This novel technique allows us to measure directly the itinerant electron spin polarization independently of the spin diffusion length. The method to detect and control electronic spin is vital to the development of spin-based electronics or spintronics, and spin-based quantum computing. The resonator is a hybrid nano-electro-mechanical device. The central torsional element of the device contains a ferromagnetic-nonmagnetic interface which generates the localized spin-torque. The mechanical torsion of the central element is coupled to an outer mechanical element, capable of transducing the torsional motion into a voltage signal. We derive the fundamental equations describing the spin-torque created by spin currents. Expressions for the expected measured voltage signal and its dependence on the magnetic field, current, and sample orientation are derived from the complete analytical model of the device. We also study the effects of thermal fluctuations and amplifier noise, which limit the measurement sensitivity of our integrated nanomechanical spin-torsion balance. Other relevant physical mechanisms such as the Wiedemann effect, are discussed. Resonators from silicon have been fabricated and their response are measured magneto-motively at temperatures down to 100 millikelvin. We have detected spin-transfer torque generated by polarized spins flipping in a paramagnetic structure. The data sets agree very well with the expected dependence of the torque on current, magnetic field, and its orientation. We have performed control measurements using identical devices without a ferromagnetic-nonmagnetic interface for proper calibration. Additional studies of vibrational energy dissipation and frequency shift in mega hertz range doubly-clamped nanobeams are described. The measurements are performed at millikelvin temperatures, which show reproducible features, similar to those observed in sound attenuation experiments in disordered glasses, consistent with measurements in larger micromechanical oscillators fabricated from single-crystal silicon.


Nanodiamonds

Nanodiamonds
Author: Jean-Charles Arnault
Publisher: William Andrew
Total Pages: 506
Release: 2017-04-25
Genre: Technology & Engineering
ISBN: 0323430325

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Nanodiamonds: Advanced Material Analysis, Properties and Applications illustrates the complementarity of specific techniques to fully characterize nanodiamonds from their diamond core (crystalline structure, defects, sp2 carbon, impurities, strain) to their surface (surface chemistry, stability of surface groups, reactivity, surface charge, colloidal properties). The relationship between physical and chemical parameters sits at the heart of what this book is about. Recent advances in the synthesis of nanodiamonds either by HPHT or detonation are covered, along with extended characterization of the core and surface of nanodiamonds, focusing on the most advanced experimental tools developed for nanoscale diagnosis. Each technique presented includes presentation of both principles and applications. This combination of advanced characterizations offers readers a better understanding of the relationship that exists between physical and chemical parameters of nanodiamonds and their properties. In particular, the role of structural defects or chemical impurities is illustrated. Toxicity of nanodiamonds for cells is also discussed, as It is an essential issue for their bioapplications. Final sections in the book cover the main promising new advances and applications of nanodiamonds, the formation of hybrids, and their use in polymer and oil composites. Provides a focused analysis of the relationship between the physical, chemical parameters, and properties of nanodiamonds Allows the reader to better understand the material characterization of nanodiamonds and how they can be most successfully used Presents R&D scientists and engineers with the information they need to understand how nanodiamonds can be used to create more efficient products Includes novel applications, for example, the formation of hybrids based on nanodiamonds, that are covered in detail


Frontiers in Magnetism of Reduced Dimension Systems

Frontiers in Magnetism of Reduced Dimension Systems
Author: Victor G. Bar'yakhtar
Publisher: Springer Science & Business Media
Total Pages: 597
Release: 2012-12-06
Genre: Science
ISBN: 9401150044

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Frontiers in Magnetism of Reduced Dimension Systems presents a definitive statement of our current knowledge and the state of the art in a field that has yet to achieve maturity, even though there are a number of potential applications of thin magnetic films and multilayers, such as magnetic sensors, data storage/retrieval media, actuators, etc. The book is organized into 13 chapters, each including a lecture and contributed papers on a similar subject. Five chapters deal with theoretical descriptions of electron transport phenomena, relaxation processes, nonlinear paramagnetic interactions, phase transitions and macroscopic quantum effects in magnetic films and particles. The description of different characterization techniques occupies an important place in the book. Separate chapters are dedicated to magnetic resonances (FMR, SWR, NMR), magneto-optical spectroscopy, controlling chaos, magnetoelastic phenomena and magnetic resonance force microscopy. A further chapter gives a detailed review, spread over a number of papers, of materials in current use in information storage devices.


Magnetic Resonance of Semiconductors and Their Nanostructures

Magnetic Resonance of Semiconductors and Their Nanostructures
Author: Pavel G. Baranov
Publisher: Springer
Total Pages: 524
Release: 2017-03-20
Genre: Technology & Engineering
ISBN: 3709111579

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This book explains different magnetic resonance (MR) techniques and uses different combinations of these techniques to analyze defects in semiconductors and nanostructures. It also introduces novelties such as single defects MR and electron-paramagnetic-resonance-based methods: electron spin echo, electrically detected magnetic resonance, optically detected magnetic resonance and electron-nuclear double resonance – the designated tools for investigating the structural and spin properties of condensed systems, living matter, nanostructures and nanobiotechnology objects. Further, the authors address problems existing in semiconductor and nanotechnology sciences that can be resolved using MR, and discuss past, current and future applications of MR, with a focus on advances in MR methods. The book is intended for researchers in MR studies of semiconductors and nanostructures wanting a comprehensive review of what has been done in their own and related fields of study, as well as future perspectives.


Single-Atom Nanoelectronics

Single-Atom Nanoelectronics
Author: Enrico Prati
Publisher: CRC Press
Total Pages: 382
Release: 2013-04-17
Genre: Science
ISBN: 9814316318

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Single-Atom Nanoelectronics covers the fabrication of single-atom devices and related technology, as well as the relevant electronic equipment and the intriguing new phenomena related to single-atom and single-electron effects in quantum devices. It also covers the alternative approaches related to both silicon- and carbon-based technologies, also from the point of view of large-scale industrial production. The publication provides a comprehensive picture of the state of the art at the cutting edge and constitutes a milestone in the emerging field of beyond-CMOS technology. Although there are numerous publications on nanoelectronics, no book highlights the effect of a single atom on device performance, which can be beneficial for making extensive use of CMOS technologies. This book is the first to deal with topics related to single-atom control, which is the final frontier for nanoelectronics.


Advanced Silicon Carbide Devices and Processing

Advanced Silicon Carbide Devices and Processing
Author: Stephen Saddow
Publisher: BoD – Books on Demand
Total Pages: 260
Release: 2015-09-17
Genre: Technology & Engineering
ISBN: 9535121685

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Since the production of the first commercially available blue LED in the late 1980s, silicon carbide technology has grown into a billion-dollar industry world-wide in the area of solid-state lighting and power electronics. With this in mind we organized this book to bring to the attention of those well versed in SiC technology some new developments in the field with a particular emphasis on particularly promising technologies such as SiC-based solar cells and optoelectronics. We have balanced this with the more traditional subjects such as power electronics and some new developments in the improvement of the MOS system for SiC MOSFETS. Given the importance of advanced microsystems and sensors based on SiC, we also included a review on 3C-SiC for both microsystem and electronic applications.


Strain-coupled Hybrid Devices Based on Single-crystal Diamond Mechanical Resonators and Nitrogen-vacancy Center Qubits

Strain-coupled Hybrid Devices Based on Single-crystal Diamond Mechanical Resonators and Nitrogen-vacancy Center Qubits
Author: Preeti Ovartchaiyapong
Publisher:
Total Pages: 165
Release: 2016
Genre:
ISBN: 9781369340969

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To address these previous limitations, this dissertation will discuss techniques for fabricating high-quality SCD mechanical resonators and further, the utilization of these resonators to both study NV center strain coupling and exert control over the NV's spin and orbital states. SCD mechanical resonators were fabricated using a diamond-on-insulator (DOI) platform, which was developed using a wafer-bonding-based technique. The fabricated SCD resonators were found to have high quality factors of over 300,000 at room temperature, and the spin properties of the embedded NV centers were maintained. Using the controlled strain field generated by the resonator's deflections, the strain sensitivities of both the NV's ground state spin and excited state transitions were studied on the individual NV basis. We demonstrated dynamic coupling of the AC strain to the resonator spins, as well as coherent modulations of the NV center's optical transitions. Utilizing our advancements in diamond fabrication and the resulting improved understanding of the strain sensitivity in NV centers, we discuss the future developments needed to reach the quantum regime of coupling.