Kejin Chen, Heng Mao, Feng Yang, Gengbo Wu, Lei Zhang, Yikai Chen, Shi-Wei Qu, Jun Hu, Shiwen Yang
Modern sensing and communication systems increasingly operate in congested electromagnetic environments, where suppressing the observability of radiated signals at unintended receivers is essential for secure operation. Space-time modulation offers a powerful means of shaping radiation for secure transmission by exploiting temporal degrees of freedom, but its achievable control is often limited by hardware-bound modulation dimensions, with further expansion incurring substantial system complexity. Here, we propose a new digitally mediated space-time modulation paradigm that significantly expands multi-dimensional radiation-control capability with minimal hardware overhead. By coherently coupling digital baseband processing with analog time modulation, the proposed architecture enables simultaneous multi-beam transmission of distinct waveforms while effectively reducing waveform observability in unintended spatial regions. Numerical simulations and experimental measurements of a multi-target prototype verify that complex radiation behaviours and intrinsic physical-layer security can be achieved using simple periodic modulation, providing a versatile strategy for radiation-domain control in next-generation sensing and communication systems.