A 2D quantum dot array in planar 28Si/SiGe
                                                article
                                            
                                        
                                                Semiconductor spin qubits have gained increasing attention as a possible platform to host a fault-tolerant quantum computer. First demonstrations of spin qubit arrays have been shown in a wide variety of semiconductor materials. The highest performance for spin qubit logic has been realized in silicon, but scaling silicon quantum dot arrays in two dimensions has proven to be challenging. By taking advantage of high-quality heterostructures and carefully designed gate patterns, we are able to form a tunnel coupled 2 × 2 quantum dot array in a 28Si/SiGe heterostructure. We are able to load a single electron in all four quantum dots, thus reaching the (1,1,1,1) charge state. Furthermore, we characterize and control the tunnel coupling between all pairs of dots by measuring polarization lines over a wide range of barrier gate voltages. Tunnel couplings can be tuned from about 30 μ eV up to approximately 400 μ eV . These experiments provide insightful information on how to design 2D quantum dot arrays and constitute a first step toward the operation of spin qubits in 28Si/SiGe quantum dots in two dimensions.
                                            
                                        TNO Identifier
                                            
                                                989060
                                            
                                        Source
                                            
                                                Applied Physics Letters, 123
                                            
                                        Publisher
                                            
                                                AIP Publishing
                                            
                                        Article nr.
                                            
                                                084002
                                            
                                        Collation
                                            
                                                6 p.
                                            
                                        Place of publication
                                            
                                                Melville, New York City, NY, USA