This paper is dedicated to Professor Alfred Klemm, one of the pioneers in the field of isotope effects and molten salts and the founder of the Zeitschrift für Naturforschung, on the occasion of his 100th birthday.The influence of the dynamic quantum shielding on the transition bremsstrahlung spectrum is investigated in strongly coupled semiclassical plasmas. The effective pseudopotential and the impact parameter analysis are employed to obtain the bremsstrahlung radiation cross section as a function of the de Broglie wavelength, Debye length, impact parameter, radiation photon energy, projectile energy, and thermal energy. The result shows that the dynamic screening effect enhances the transition bremsstrahlung radiation cross section. It is found that the maximum position of the transition bremsstrahlung process approaches to the center of the shielding cloud with increasing thermal energy. It is also found that the dynamic screening effect on the bremsstrahlung radiation cross section decreases with an increase of the quantum character of the semiclassical plasma. In addition, it is found that the peak radiation energy increases with an increase of the thermal energy. It is also found that the dynamic quantum screening effect enhances the bremsstrahlung Gaunt factor, especially for the soft-photon case.Key words: Dynamic Quantum Screening; Transition Bremsstrahlung; Semiclassical Plasma.The bremsstrahlung emission spectrum [1 -7] due to the particle interactions in plasmas has received considerable attention since the bremsstrahlung process has played a crucial role in modern fields of plasma physics, such as plasma diagnostics, plasma discharges, and plasma spectroscopy. In addition to the bremsstrahlung emission by the electron-ion encounters, the transition bremsstrahlung process [3,6] due to the polarization interaction between the plasma particle and the Debye shielding cloud in plasmas has been extensively investigated since this process has provided useful information on the physical properties of the screening structure and plasma parameters. The plasma described by the standard static DebyeHückel potential has been known as the ideal or weakly coupled classical plasma since the average interaction energy between charged particles is smaller than the average kinetic energy of a plasma particle in plasmas [8,9]. However, it is shown that the static interaction potential would not be reliable to explore the collision and radiation processes in plasmas when the velocity of the projectile is comparable to or smaller than the velocity of the plasma electron since the projectile electron would polarize the surrounding plasma shielding cloud due to the long-duration of the interaction [10]. In these circumstances, the dynamic description of the plasma electrons has to be taken into account in order to properly investigate the influence of the plasma shielding on the effective interaction potential in plasmas. In addition to the dynamic screen-