Javascript must be enabled to continue!
Nuclear Matrix Elements for Heavy Ion Sequential Double Charge Exchange Reactions
View through CrossRef
The theoretical approach to a sequential heavy ion double charge exchange reaction is presented. A brief introduction into the formal theory of second-order nuclear reactions and their application to Double Single Charge Exchange (DSCE) reactions by distorted wave theory is given, thereby completing the theoretical background to our recent work. Formally, the DSCE reaction amplitudes are shown to be separable into superpositions of distortion factors, accounting for initial and final state ion–ion interactions, and nuclear matrix elements. A broad space is given to the construction of nuclear DSCE response functions on the basis of polarization propagator theory. The nuclear response tensors resemble the nuclear matrix elements of 2νββ decay in structure but contain in general a considerable more complex multipole and spin structure. The QRPA theory is used to derive explicit expressions for nuclear matrix elements (NMEs). The differences between the NME of the first and the second interaction vertexes in a DSCE reaction is elucidated. Reduction schemes for the transition form factors are discussed by investigating the closure approximation and the momentum structure of form factors. DSCE unit strength cross sections are derived.
Title: Nuclear Matrix Elements for Heavy Ion Sequential Double Charge Exchange Reactions
Description:
The theoretical approach to a sequential heavy ion double charge exchange reaction is presented.
A brief introduction into the formal theory of second-order nuclear reactions and their application to Double Single Charge Exchange (DSCE) reactions by distorted wave theory is given, thereby completing the theoretical background to our recent work.
Formally, the DSCE reaction amplitudes are shown to be separable into superpositions of distortion factors, accounting for initial and final state ion–ion interactions, and nuclear matrix elements.
A broad space is given to the construction of nuclear DSCE response functions on the basis of polarization propagator theory.
The nuclear response tensors resemble the nuclear matrix elements of 2νββ decay in structure but contain in general a considerable more complex multipole and spin structure.
The QRPA theory is used to derive explicit expressions for nuclear matrix elements (NMEs).
The differences between the NME of the first and the second interaction vertexes in a DSCE reaction is elucidated.
Reduction schemes for the transition form factors are discussed by investigating the closure approximation and the momentum structure of form factors.
DSCE unit strength cross sections are derived.
Related Results
Theory of Majorana–Type Heavy Ion Double Charge Exchange Reactions by Pion-Nucleon Isotensor Interactions
Theory of Majorana–Type Heavy Ion Double Charge Exchange Reactions by Pion-Nucleon Isotensor Interactions
The theory of heavy ion double charge exchange (DCE) reactions proceeding by effective rank–2 isotensor interactions is presented. Virtual pion–nucleon charge exchange interactions...
Efficiency of Steamflooding in Naturally Fractured Reservoirs
Efficiency of Steamflooding in Naturally Fractured Reservoirs
Abstract
This study aims to identify the effective parameters on matrix heating and recovery, and the efficiencies of these processes while there is a continuous ...
Matrix Subgridding and Its Effects in Dual Porosity Simulators
Matrix Subgridding and Its Effects in Dual Porosity Simulators
Abstract
Naturally fractured reservoirs are found throughout the world and contain significant amounts of oil reserves. The so-called dual porosity model is one o...
Ion Intercalation into Vanadium Sulfides for Battery Applications
Ion Intercalation into Vanadium Sulfides for Battery Applications
Global battery manufacturing capacity will more than double by 2021 to about 280,000 megawatt-hours.1 Rechargeable batteries make up a significant fraction of battery manufacturing...
Investigation of the Quark-Gluon Plasma With the ALICE Experiment
Investigation of the Quark-Gluon Plasma With the ALICE Experiment
The quark-gluon plasma, or QGP, is a state of matter in which quarks and gluons, the elementary building blocks of ordinary baryonic matter (as protons and neutrons), are no longer...
Study on Nuclear Safety Management Based on Multiple Nuclear Power Plants Experience Feedback Management
Study on Nuclear Safety Management Based on Multiple Nuclear Power Plants Experience Feedback Management
Abstract
Nuclear power plant experience feedback management includes event reporting, screening, analysis, corrective action management and assessment. In the early ...
Heavy Metal Stabilization in Sewage Sludge Composting Process
Heavy Metal Stabilization in Sewage Sludge Composting Process
The most important factor limiting the soil application of sewage sludge is the presence of heavy metals.
This study was conducted to evaluate the effect of composting on nut...
Simulation of unidirectional ion ejection in linear ion traps with asymmetric radiofrequency voltage
Simulation of unidirectional ion ejection in linear ion traps with asymmetric radiofrequency voltage
RationaleLinear ion traps with simplified structure have been widely used in miniaturized mass spectrometers. However, linear ion traps usually have low ion detection efficiency wh...

