• Study Resource
  • Explore Categories
    • Arts & Humanities
    • Business
    • Engineering & Technology
    • Foreign Language
    • History
    • Math
    • Science
    • Social Science

    Top subcategories

    • Advanced Math
    • Algebra
    • Basic Math
    • Calculus
    • Geometry
    • Linear Algebra
    • Pre-Algebra
    • Pre-Calculus
    • Statistics And Probability
    • Trigonometry
    • other →

    Top subcategories

    • Astronomy
    • Astrophysics
    • Biology
    • Chemistry
    • Earth Science
    • Environmental Science
    • Health Science
    • Physics
    • other →

    Top subcategories

    • Anthropology
    • Law
    • Political Science
    • Psychology
    • Sociology
    • other →

    Top subcategories

    • Accounting
    • Economics
    • Finance
    • Management
    • other →

    Top subcategories

    • Aerospace Engineering
    • Bioengineering
    • Chemical Engineering
    • Civil Engineering
    • Computer Science
    • Electrical Engineering
    • Industrial Engineering
    • Mechanical Engineering
    • Web Design
    • other →

    Top subcategories

    • Architecture
    • Communications
    • English
    • Gender Studies
    • Music
    • Performing Arts
    • Philosophy
    • Religious Studies
    • Writing
    • other →

    Top subcategories

    • Ancient History
    • European History
    • US History
    • World History
    • other →

    Top subcategories

    • Croatian
    • Czech
    • Finnish
    • Greek
    • Hindi
    • Japanese
    • Korean
    • Persian
    • Swedish
    • Turkish
    • other →
 
Profile Documents Logout
Upload
Entropy, Strings, and Partitions of Integers
Entropy, Strings, and Partitions of Integers

... Therefore, the state of a quantum string is specified by a sequence ψ of non-negative integers, ψ = (n1 , n2 , n3 , . . . ) , where n` is the state number of the oscillator with frequency `ω. The total energy of a string in state ψ is the sum of the energies in each of the individual oscillators, E ...
Deformation quantization for fermionic fields
Deformation quantization for fermionic fields

The BEH Mechanism and its Scalar Boson by François Englert
The BEH Mechanism and its Scalar Boson by François Englert

Ferroelectrics from first principles Tips, tricks and pitfalls
Ferroelectrics from first principles Tips, tricks and pitfalls

... odern theory of polarization1 P has in the theory of the ferroelectric t could previously be inferred only now be computed with quantum rst-principles density functional s focused on bulk ferroelectric e balance between covalency and ferroelectricity. Over time, these the effects of external paramet ...
Introduction to the Bethe Ansatz II
Introduction to the Bethe Ansatz II

... now celebrated method for calculating eigenvalues, eigenvectors, and a host of physical properties. Interest in quasi-1D magnetic materials has stimulated theoretical work on quantum spin chains from the early sixties until the present. Some of the advances achieved via the Bethe ansatz emerged in d ...
Spin Transverse Force on Spin Current in an Electric Field
Spin Transverse Force on Spin Current in an Electric Field

... generate a nonuniform magnetic field to split the beam of silver atoms. In the classical limit it is written as the interaction between the magnetic momentum   hB i and magnetic field. This spin force depends on the spin. Recently it is proposed that the force can generate a pure spin current i ...
Waxman
Waxman

PH504lec0809-7
PH504lec0809-7

... not contribute to the surface flux as it contributes equal amounts of negative and positive flux. Dielectric B however, which is cut by the surface S, will give a contribution to the flux through S as in general there will be a net polarisation charge crossing S. From (A) above the polarisation char ...
Theory of the quantized Hall effect 1. Introduction
Theory of the quantized Hall effect 1. Introduction

Phys241ManualUnit2
Phys241ManualUnit2

... Write a "mini-report" for this section of the lab manual. Describe what you did succinctly, and then what you found accurately. Then explain what the result means and how it relates to some of the concepts in the previous section. You must write using sentences & paragraphs; bulleted lists are unacc ...
Near-Field Optical Forces: Photonics
Near-Field Optical Forces: Photonics

February 2009
February 2009

... current is placed in a magnetic field, the flowing electrons experience a force perpendicular to both the magnetic field and the current. The production of voltage, or potential difference, by this (Lorentz) force is known as the Hall effect (Fig. 1). It is exploited in several electronic devices su ...
M.V. Nezlin, Negative-energy waves and the anomalous Doppler
M.V. Nezlin, Negative-energy waves and the anomalous Doppler

Optical properties of ZnO/(Zn, Mg)O quantum wells
Optical properties of ZnO/(Zn, Mg)O quantum wells

Exploring the importance of quantum effects in nucleation
Exploring the importance of quantum effects in nucleation

... role in modifying the absolute quantitative value of condensation and evaporation rates with respect to a classical mechanics description. Support to this idea is provided by the simple observation that D2 O should be more classical (smaller rotational constants and vibrational frequencies) than nor ...
High School Physics – Pacing Chart
High School Physics – Pacing Chart

... Calculations of friction forces down inclines from the coefficient of friction and the normal force will not be addressed in this course. An object moves at constant speed in a circular path when there is a constant net force that is always directed at right angles to the direction in motion toward ...
Phases in noncommutative quantum mechanics on (pseudo) sphere
Phases in noncommutative quantum mechanics on (pseudo) sphere

... to their relationship with M-theory compactifications [1], string theory in nontrivial backgrounds [2] and quantum Hall effect [3] (see e.g. [4] for a recent review). At low energies the one-particle sectors become relevant, which prompted an interest in the study of noncommutative quantum mechanics ...
The Magnetism as an Electric Angle
The Magnetism as an Electric Angle

... The magnetic force is really somehow strange: Whenever an electric charge has a velocity, a magnetic field arises, which is both perpendicular to this velocity and perpendicular to the electric field of this charge. And whenever a charge has a velocity perpendicular to a magnetic field, a magnetic f ...
Electrogravitics Systems - Reports On a New Propulsion Methodology
Electrogravitics Systems - Reports On a New Propulsion Methodology

Paper 25 - Free-Energy Devices
Paper 25 - Free-Energy Devices

Response to Physics Draft by AIP
Response to Physics Draft by AIP

... column from a 1980’s science curriculum with a cosmetic makeover by using titles such as ‘human endeavour’. Not only are there too many to possibly include in a teaching program , it would also be more effective if alternative coherent contexts could be used to group the examples, In this way teache ...
Item Spec`s Spec`s with Sw DL 3155M04 ELECTRIC FIELD
Item Spec`s Spec`s with Sw DL 3155M04 ELECTRIC FIELD

Electrostatic PowerPoint
Electrostatic PowerPoint

E10_problems
E10_problems

... A description: The charges spread out all over the surface of the metal. An explanation: The charges spread out all over the surface of the metal because the free electrons in metal repel each other (like charges repel) and arrange themselves at the greatest possible distances from each other. Scien ...
Topic 13: Quantum and nuclear physics
Topic 13: Quantum and nuclear physics

... Back in the very early 1900s physicists thought that within a few years everything having to do with physics would be discovered and the “book of physics” would be complete. This “book of physics” has come to be known as classical physics and consists of particles and mechanics on the one hand, an ...
< 1 ... 23 24 25 26 27 28 29 30 31 ... 139 >

Casimir effect



In quantum field theory, the Casimir effect and the Casimir–Polder force are physical forces arising from a quantized field. They are named after the Dutch physicist Hendrik Casimir.The typical example is of two uncharged metallic plates in a vacuum, placed a few nanometers apart. In a classical description, the lack of an external field means that there is no field between the plates, and no force would be measured between them. When this field is instead studied using the QED vacuum of quantum electrodynamics, it is seen that the plates do affect the virtual photons which constitute the field, and generate a net force—either an attraction or a repulsion depending on the specific arrangement of the two plates. Although the Casimir effect can be expressed in terms of virtual particles interacting with the objects, it is best described and more easily calculated in terms of the zero-point energy of a quantized field in the intervening space between the objects. This force has been measured and is a striking example of an effect captured formally by second quantization. However, the treatment of boundary conditions in these calculations has led to some controversy.In fact, ""Casimir's original goal was to compute the van der Waals force between polarizable molecules"" of the metallic plates. Thus it can be interpreted without any reference to the zero-point energy (vacuum energy) of quantum fields.Dutch physicists Hendrik B. G. Casimir and Dirk Polder at Philips Research Labs proposed the existence of a force between two polarizable atoms and between such an atom and a conducting plate in 1947, and, after a conversation with Niels Bohr who suggested it had something to do with zero-point energy, Casimir alone formulated the theory predicting a force between neutral conducting plates in 1948; the former is called the Casimir–Polder force while the latter is the Casimir effect in the narrow sense. Predictions of the force were later extended to finite-conductivity metals and dielectrics by Lifshitz and his students, and recent calculations have considered more general geometries. It was not until 1997, however, that a direct experiment, by S. Lamoreaux, described above, quantitatively measured the force (to within 15% of the value predicted by the theory), although previous work [e.g. van Blockland and Overbeek (1978)] had observed the force qualitatively, and indirect validation of the predicted Casimir energy had been made by measuring the thickness of liquid helium films by Sabisky and Anderson in 1972. Subsequent experiments approach an accuracy of a few percent.Because the strength of the force falls off rapidly with distance, it is measurable only when the distance between the objects is extremely small. On a submicron scale, this force becomes so strong that it becomes the dominant force between uncharged conductors. In fact, at separations of 10 nm—about 100 times the typical size of an atom—the Casimir effect produces the equivalent of about 1 atmosphere of pressure (the precise value depending on surface geometry and other factors).In modern theoretical physics, the Casimir effect plays an important role in the chiral bag model of the nucleon; in applied physics, it is significant in some aspects of emerging microtechnologies and nanotechnologies.Any medium supporting oscillations has an analogue of the Casimir effect. For example, beads on a string as well as plates submerged in noisy water or gas illustrate the Casimir force.
  • studyres.com © 2025
  • DMCA
  • Privacy
  • Terms
  • Report