Disentangling superconductor and dielectric microwave losses in sub-micron / interconnects using a multi-mode microstrip resonator
arXiv:2303.10685 · doi:10.1103/PhysRevApplied.21.024056
Abstract
Understanding the origins of power loss in superconducting interconnects is essential for the energy efficiency and scalability of superconducting digital logic. At microwave frequencies, power dissipates in both the dielectrics and superconducting wires, and these losses can be of comparable magnitude. A novel method to accurately disentangle such losses by exploiting their frequency dependence using a multi-mode transmission line resonator, supported by a geometric factor concept and a 3D superconductor finite element method (FEM) modeling, is described. Using the method we optimized a planarized fabrication process of reciprocal quantum logic (RQL) for the interconnect loss at 4.2 K and GHz frequencies. The interconnects are composed of niobium () insulated by silicon dioxide made with a tetraethyl orthosilicate precursor (). Two process generations use damascene fabrication, and the third one uses Cloisonné fabrication. For all three, exhibits a dielectric loss tangent , independent of wire width over . The loss varies with both the processing and the wire width. For damascene fabrication, scanning transmission electron microscopy (STEM) and energy dispersive X-ray spectroscopy (EDS) reveal that Nb oxide and Nb grain growth orientation increase the loss above the Bardeen Cooper Schrieffer (BCS) minimum theoretical resistance . For Cloisonné fabrication, the wide wires exhibit an intrinsic resistance at 10 GHz, which is below . That is arguably the lowest resistive loss reported for .
References in corpus (11)
- Materials loss measurements using superconducting microwave resonators
- Surface impedance and optimum surface resistance of a superconductor with imperfect surface
- Comparison of Dielectric Loss in Titanium Nitride and Aluminum Superconducting Resonators
- Inductance and mutual inductance of superconductor integrated circuit features with sizes down to 120 nm. Part I
- Microwave Superconductivity
- Mutual and self-inductance in planarized multilayered superconductor integrated circuits: Microstrips, striplines, bends, meanders, ground plane perforations
- Tuning microwave losses in superconducting resonators
- Propagation of Picosecond Pulses on Superconducting Transmission Line Interconnects
- Synchronous Chip-to-Chip Communication with a Multi-Chip Resonator Clock Distribution Network
- Isochronous Data Link Across a Superconducting Nb Flex Cable with 5 femtojoules per Bit
- Measurements of the amplitude-dependent microwave surface resistance of an Au/Nb bilayer