Jove
Visualize
Contact Us
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Concept Videos

Nuclear Fusion02:45

Nuclear Fusion

35.4K
The process of converting very light nuclei into heavier nuclei is also accompanied by the conversion of mass into large amounts of energy, a process called fusion. The principal source of energy in the sun is a net fusion reaction in which four hydrogen nuclei fuse and ultimately produce one helium nucleus and two positrons.
A helium nucleus has a mass that is 0.7% less than that of four hydrogen nuclei; this lost mass is converted into energy during the fusion. This reaction produces about...
35.4K
Inductively Coupled Plasma Atomic Emission Spectroscopy: Principle01:19

Inductively Coupled Plasma Atomic Emission Spectroscopy: Principle

2.4K
Inductively coupled plasma (ICP) is the most widely used plasma source in atomic emission spectroscopy (AES), also known as Inductively Coupled Plasma Optical Emission Spectroscopy (ICP-OES). The ICP source, or torch, consists of three concentric quartz tubes with argon gas flowing through them. A spark from a Tesla coil initiates the ionization of argon, generating a high-temperature plasma.
The ions and electrons produced interact with the fluctuating magnetic field created by a water-cooled...
2.4K

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Patient-related risk factors for outlet obstruction in diverting loop ileostomy following minimally invasive rectal cancer surgery.

Techniques in coloproctology·2025
Same author

Cytogenetic validation of DS02R1-estimated dose for atomic bomb survivors in Hiroshima and Nagasaki with FISH.

International journal of radiation biology·2024
Same author

Safety evaluation of the use of calcineurin inhibitor to prenatal and postpartum women in Japan from a health administrative database.

Journal of neonatal-perinatal medicine·2023
Same author

Epstein-Barr virus-associated inflammatory pseudotumor variant of follicular dendritic cell sarcoma of the liver: a case report and review of the literature.

Surgical case reports·2022
Same author

Relationship between the combination of polyunsaturated fatty acids intake and psychological distress during pregnancy: The Tohoku Medical Megabank Project Birth and Three-Generation Cohort Study.

Prostaglandins, leukotrienes, and essential fatty acids·2022
Same author

Ion-production efficiency of a singly charged ion source developed toward a <sup>11</sup>C irradiation facility for cancer therapy.

The Review of scientific instruments·2019

Related Experiment Video

Updated: Apr 11, 2026

Direct Imaging of Laser-driven Ultrafast Molecular Rotation
10:52

Direct Imaging of Laser-driven Ultrafast Molecular Rotation

Published on: February 4, 2017

10.3K

Direct heating of a laser-imploded core by ultraintense laser-driven ions.

Y Kitagawa1, Y Mori1, O Komeda1

  • 1The Graduate School for the Creation of New Photonics Industries, Kurematsucho, 1955-1 Nishi-ku, Hamamatsu 431-1202 Japan.

Physical Review Letters
|May 30, 2015
PubMed
Summary

A new direct core heating fusion process uses energetic ions from an ultrashort pulse laser to heat plasma, producing fusion neutrons. Future experiments aim for higher core density to achieve high-gain fusion.

More Related Videos

Automated Delivery of Microfabricated Targets for Intense Laser Irradiation Experiments
06:40

Automated Delivery of Microfabricated Targets for Intense Laser Irradiation Experiments

Published on: January 28, 2021

4.8K
Femtosecond Laser Filaments for Use in Sub-Diffraction-Limited Imaging and Remote Sensing
06:16

Femtosecond Laser Filaments for Use in Sub-Diffraction-Limited Imaging and Remote Sensing

Published on: April 25, 2019

8.1K

Related Experiment Videos

Last Updated: Apr 11, 2026

Direct Imaging of Laser-driven Ultrafast Molecular Rotation
10:52

Direct Imaging of Laser-driven Ultrafast Molecular Rotation

Published on: February 4, 2017

10.3K
Automated Delivery of Microfabricated Targets for Intense Laser Irradiation Experiments
06:40

Automated Delivery of Microfabricated Targets for Intense Laser Irradiation Experiments

Published on: January 28, 2021

4.8K
Femtosecond Laser Filaments for Use in Sub-Diffraction-Limited Imaging and Remote Sensing
06:16

Femtosecond Laser Filaments for Use in Sub-Diffraction-Limited Imaging and Remote Sensing

Published on: April 25, 2019

8.1K

Area of Science:

  • Nuclear Fusion Energy
  • Plasma Physics
  • Laser-Plasma Interactions

Background:

  • Achieving controlled nuclear fusion requires efficient core heating and ignition.
  • Current methods face challenges in energy deposition and achieving desired neutron yields.

Purpose of the Study:

  • Introduce and evaluate a novel direct core heating fusion process.
  • Investigate the role of energetic ions and hot electrons in plasma heating and ignition.
  • Assess the potential for high-gain fusion.

Main Methods:

  • Utilized an extremely energetic ultrashort pulse laser (LFEX) to drive energetic ions.
  • Observed D(d,n)^{3}He-reacted neutrons (DD beam-fusion neutrons) and thermal neutrons.
  • Employed 1D hydrocode (STAR 1D) for implosion dynamics and 2D collisional particle-in-cell code for core heating predictions.

Main Results:

  • Observed DD beam-fusion neutrons (5×10^{8} n/4π sr) and thermal neutrons (6×10^{7} n/4π sr).
  • Verified direct ion collision with core plasma and local energy deposition forming hot spots.
  • Identified limitations in current core density (2 g/cm³) affecting energy deposition and neutron yield.

Conclusions:

  • The proposed direct core heating scheme shows potential for high-gain fusion.
  • Energetic ions and hot electrons are crucial for core heating and ignition.
  • Increasing core density is essential for enhancing energy deposition and neutron yield in future experiments.