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Types Of Collisions - I01:04

Types Of Collisions - I

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When two objects come in direct contact with each other, it is called a collision. During a collision, two or more objects exert forces on each other in a relatively short amount of time. A collision can be categorized as either an elastic or inelastic collision. If two or more objects approach each other, collide and then bounce off, moving away from each other with the same relative speed at which they approached each other, the total kinetic energy of the system is said to be conserved. This...
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Types of Collisions - II01:19

Types of Collisions - II

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When two or more objects collide with each other, they can stick together to form one single composite object (after collision). The total mass of the object after the collision is the sum of the masses of the original objects, and it moves with a velocity dictated by the conservation of momentum. Although the system's total momentum remains constant, the kinetic energy decreases, and thus such a collision is an inelastic collision. Most of the collisions between objects in daily life are...
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Responses to Heat and Cold Stress02:45

Responses to Heat and Cold Stress

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Every organism has an optimum temperature range within which healthy growth and physiological functioning can occur. At the ends of this range, there will be a minimum and maximum temperature that interrupt biological processes.
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Basic Postulates of Kinetic Molecular Theory: Particle Size, Energy, and Collision02:43

Basic Postulates of Kinetic Molecular Theory: Particle Size, Energy, and Collision

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The ideal-gas equation, which is empirical, describes the behavior of gases by establishing relationships between their macroscopic properties. For example, Charles’ law states that volume and temperature are directly related. Gases, therefore, expand when heated at constant pressure. Although gas laws explain how the macroscopic properties change relative to one another, it does not explain the rationale behind it.
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Elastic Collisions: Introduction01:00

Elastic Collisions: Introduction

15.0K
An elastic collision is one that conserves both internal kinetic energy and momentum. Internal kinetic energy is the sum of the kinetic energies of the objects in a system. Truly elastic collisions can only be achieved with subatomic particles, such as electrons striking nuclei. Macroscopic collisions can be very nearly, but not quite, elastic, as some kinetic energy is always converted into other forms of energy such as heat transfer due to friction and sound. An example of a nearly...
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Elastic Collisions: Case Study01:15

Elastic Collisions: Case Study

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Elastic collision of a system demands conservation of both momentum and kinetic energy. To solve problems involving one-dimensional elastic collisions between two objects, the equations for conservation of momentum and conservation of internal kinetic energy can be used. For the two objects, the sum of momentum before the collision equals the total momentum after the collision. An elastic collision conserves internal kinetic energy, and so the sum of kinetic energies before the collision equals...
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Updated: Jan 21, 2026

Comparison of Two Different Synthesis Methods of Single Crystals of Superconducting Uranium Ditelluride
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Collisions between cold molecules in a superconducting magnetic trap.

Yair Segev1, Martin Pitzer1, Michael Karpov1

  • 1Department of Chemical and Biological Physics, Weizmann Institute of Science, Rehovot, Israel.

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Scientists directly observed collisions between cold, trapped molecules without laser cooling. This breakthrough in quantum chemistry sets bounds on scattering rates, crucial for creating quantum degenerate molecular matter.

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Area of Science:

  • Quantum Chemistry
  • Atomic and Molecular Physics
  • Cold Matter Physics

Background:

  • Collisions between cold molecules are vital for quantum chemistry and creating quantum degenerate molecular matter via evaporative cooling.
  • Direct observation of collisions between trapped, naturally occurring molecules has been limited by low collision rates in dilute samples.

Purpose of the Study:

  • To directly observe collisions between cold, trapped molecules without requiring laser cooling.
  • To investigate the feasibility of evaporative cooling by determining the ratio of elastic- to inelastic-scattering rates.
  • To enable studies of cold interspecies collisions by co-trapping atoms and molecules.

Main Methods:

  • Magnetic capture of molecular oxygen in a superconducting trap at 800 millikelvin.
  • Setting bounds on the ratio between elastic- and inelastic-scattering rates.
  • Co-trapping of atoms and molecules within the magnetic trap.

Main Results:

  • Direct observation of collisions between cold, trapped molecular oxygen achieved without laser cooling.
  • Established bounds for the elastic- to inelastic-scattering rate ratio, a critical parameter for evaporative cooling.
  • Successfully co-trapped atoms and molecules, enabling identification of interspecies collisions.

Conclusions:

  • The direct observation of cold molecule collisions opens new avenues in quantum chemistry research.
  • The determined scattering rate ratios provide essential data for the pursuit of quantum degenerate molecular matter.
  • Co-trapping atoms and molecules facilitates future investigations into cold interspecies collisions in magnetic traps.