\begin{document}$ ^{252} {\rm{Cf}}$\end{document} isotope produced at Oak Ridge National Laboratory is a promising target material for the synthesis of new superheavy nuclei through fusion reaction experiments. Within the framework of the dinuclear system model, reaction systems with the \begin{document}$ ^{252} {\rm{Cf}}$\end{document} target and \begin{document}$ ^{48} {\rm{Ca}}$\end{document}, \begin{document}$ ^{45} {\rm{Sc}}$\end{document}, \begin{document}$ ^{50} {\rm{Ti}}$\end{document}, \begin{document}$ ^{51} {\rm{V}}$\end{document}, \begin{document}$ ^{54} {\rm{Cr}}$\end{document}, and \begin{document}$ ^{55} {\rm{Mn}}$\end{document} projectiles are investigated for the synthesis of the new isotopes \begin{document}$ ^{295-297} {\rm{Og}}$\end{document}, \begin{document}$ ^{292-294} {\rm{119}}$\end{document}, \begin{document}$ ^{297-299} {\rm{120}}$\end{document}, \begin{document}$ ^{298-300} {\rm{121}}$\end{document}, \begin{document}$ ^{301-303} {\rm{122}}$\end{document}, and \begin{document}$ ^{302-304} {\rm{123}}$\end{document}. The decreasing trend of maximal evaporation residue cross sections with the increasing proton number of the compound nucleus is discussed in the capture, fusion, and survival stages. Additionally, radioactive beam-induced reactions based on the \begin{document}$ ^{252} {\rm{Cf}}$\end{document} target are investigated to reach the predicted neutron shell closure N = 184, with the maximal evaporation residue cross section predicted to be 21 fb for synthesizing \begin{document}$ ^{302} {\rm{Og}}$\end{document}. The predicted results fall below the current detection limitation, indicating the necessity for advancement in both accelerator and detection techniques, as well as exploration of alternative reaction mechanisms."> Predictions for the synthesis of new superheavy nuclei with a <sup>252</sup>Cf target -
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