TY - JOUR
T1 - Manipulation of Giant Multipole Resonances via Vortex γ Photons
AU - Lu, Zhi Wei
AU - Guo, Liang
AU - Li, Zheng Zheng
AU - Ababekri, Mamutjan
AU - Chen, Fang Qi
AU - Fu, Changbo
AU - Lv, Chong
AU - Xu, Ruirui
AU - Kong, Xiangjin
AU - Niu, Yi Fei
AU - Li, Jian Xing
N1 - Publisher Copyright:
© 2023 American Physical Society.
PY - 2023/11/17
Y1 - 2023/11/17
N2 - Traditional photonuclear reactions primarily excite giant dipole resonances, making the measurement of isovector giant resonances with higher multipolarities a great challenge. In this Letter, the manipulation of collective excitations of different multipole transitions in even-even nuclei via vortex γ photons is investigated. We develop the calculation method for photonuclear cross sections induced by the vortex γ photon beam using the fully self-consistent random-phase approximation plus particle-vibration coupling (RPA+PVC) model based on Skyrme density functional. We find that the electromagnetic transitions with multipolarity J<|mγ| are forbidden for vortex γ photons due to the angular momentum conservation, with mγ being the projection of total angular momentum of γ photon on its propagation direction. For instance, this allows for probing the isovector giant quadrupole resonance without interference from dipole transitions using vortex γ photons with mγ=2. Furthermore, the electromagnetic transition with J=|mγ|+1 vanishes at a specific polar angle. Therefore, the giant resonances with specific multipolarity can be extracted via vortex γ photons. Moreover, the vortex properties of γ photons can be meticulously diagnosed by measuring the nuclear photon-absorption cross section. Our method opens new avenues for photonuclear excitations, generation of coherent γ photon laser and precise detection of vortex particles, and consequently, has significant impact on nuclear physics, nuclear astrophysics and strong laser physics.
AB - Traditional photonuclear reactions primarily excite giant dipole resonances, making the measurement of isovector giant resonances with higher multipolarities a great challenge. In this Letter, the manipulation of collective excitations of different multipole transitions in even-even nuclei via vortex γ photons is investigated. We develop the calculation method for photonuclear cross sections induced by the vortex γ photon beam using the fully self-consistent random-phase approximation plus particle-vibration coupling (RPA+PVC) model based on Skyrme density functional. We find that the electromagnetic transitions with multipolarity J<|mγ| are forbidden for vortex γ photons due to the angular momentum conservation, with mγ being the projection of total angular momentum of γ photon on its propagation direction. For instance, this allows for probing the isovector giant quadrupole resonance without interference from dipole transitions using vortex γ photons with mγ=2. Furthermore, the electromagnetic transition with J=|mγ|+1 vanishes at a specific polar angle. Therefore, the giant resonances with specific multipolarity can be extracted via vortex γ photons. Moreover, the vortex properties of γ photons can be meticulously diagnosed by measuring the nuclear photon-absorption cross section. Our method opens new avenues for photonuclear excitations, generation of coherent γ photon laser and precise detection of vortex particles, and consequently, has significant impact on nuclear physics, nuclear astrophysics and strong laser physics.
UR - https://www.scopus.com/pages/publications/85178320129
U2 - 10.1103/PhysRevLett.131.202502
DO - 10.1103/PhysRevLett.131.202502
M3 - 文章
C2 - 38039451
AN - SCOPUS:85178320129
SN - 0031-9007
VL - 131
JO - Physical Review Letters
JF - Physical Review Letters
IS - 20
M1 - 202502
ER -