Wenbin Xu, Chengyuan Bai, Chuanchao Huang, Roland Bürgmann, Baojun Shan, Xinjian Shan, Zhidan Chen, Lei Xie, Feng Shi
The Mw 7.0 Dingri earthquake, the largest documented normal-faulting event in southern Tibet, struck within the NS-trending Dinggye-Xainza Rift system. Here we combine field observations, high resolution optical and synthetic aperture radar imagery and seismic waveforms to determine the three-dimensional coseismic deformation field, coseismic rupture processes and early postseismic deformation mechanisms of the event. We find that the rupture propagated unilaterally northward from the earthquake hypocenter, concurrently activating two graben-bounding faults. The main rupture was concentrated on the Dengmo Co fault causing a maximum subsidence of 3 m and a 25-km-long rupture trace at the surface. The first four-months postseismic deformation is dominated by shallow afterslip, which exhibits spatial overlap with the coseismic slip zone. Our observations provide important insights into the rupture kinematics and strain partitioning within the Dinggye-Xainza Rift, offering a valuable framework for understanding continental extensional tectonics and seismic cycle processes in similar southern Tibet grabens. A wedge-shaped graben extension mechanism for the 2025 Dingri earthquake involved two graben-bounding faults, highlighting that early postseismic deformation is mainly driven by shallow afterslip and viscoelastic relaxation, with the afterslip spatially complementing coseismic slip, according to integration of field observations, geodetic and seismic data.