Abstract
Microwave-driven logic is a promising alternative to laser control in scaling trapped-ion based quantum processors. However, such electronic gates have yet to match the speed offered by their laser-driven counterparts. Here, we implement M{\o}lmer-S{\o}rensen two-qubit gates on hyperfine clock qubits in a cryogenic () surface trap, driven by near-field microwaves. We achieve gate durations of (with error) and ( error), which approaches the performance of typical laser-driven gates. In the gate, we demonstrate a new Walsh-modulated dynamical decoupling scheme which suppresses errors due to fluctuations in the qubit frequency as well as imperfections in the decoupling drive itself.