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Huma Yusuf

Publications and source records attributed to Huma Yusuf.

3 recordsLinked to original sources

α-Ta (111) Thin Films for Qubit Applications: A Study of Thickness Dependence and Universal Scaling

We explore the growth of α-Ta thin films ranging from ultra-thin (2 nm) to thick (250 nm) films grown by sputter epitaxy on c-plane sapphire substrates. We utilized 100 W power with a 32 mTorr sputter pressure at 650 ° substrate deposition temperature. We used X-ray diffractometry to extract the lattice constant and growth orientation of the films, finding a mono-oriented (111) films with a lattice spacing in agreement with a bulk Ta value of 3.31 Å. X-ray reflectometry is used to characterize the native oxide, film, and substrate-film interface as a function of thickness. We observe a very smooth morphology with an average roughness of 700 pm, as determined by both reflectometry and atomic force microscopy. The film nucleates with small islands, whose terrace width grows linearly as a function of thickness until 150 nm, where the terrace width becomes constant. From our reflectometry measurements, we uncover a pseudomorphic layer with a critical thickness of 1 nm and a self-limiting amorphous oxide that grows to a thickness of 2.25 nm; both of these layers are independent of thickness beyond 4 nm total thickness. We also studied the superconducting transition through electronic transport measurements using the Van der Pauw method to measure resistivity as a function of temperature. We observed a smooth evolution in critical superconducting temperature with total film thickness, from 2.9 °K for 7.5 nm to 4.2 °K for 269.2 nm, as expected from universal thickness scaling in superconductors. Density functional theory simulations were used to understand the oxidation process at the top surface layers of α-Ta (111). We observed that as the oxygen content on the surface increases, the Ta progressively loses its crystalline structure. Significant structural distortions occur when the Ta:O ratio exceeds 1:1, forming an amorphous TaO phase.

cond-mat.mtrl-sci

Strong photon-magnon coupling using a lithographically defined organic ferrimagnet

We demonstrate a hybrid quantum system composed of superconducting resonator photons and magnons hosted by the organic-based ferrimagnet vanadium tetracyanoethylene (V[TCNE]$_x$). Our work is motivated by the challenge of scalably integrating an arbitrarily-shaped, low-damping magnetic system with planar superconducting circuits, thus enabling a host of quantum magnonic circuit designs that were previously inaccessible. For example, by leveraging the inherent properties of magnons, one can enable nonreciprocal magnon-mediated quantum devices that use magnon propagation rather than electrical current. We take advantage of the properties of V[TCNE]$_x$, which has ultra-low intrinsic damping, can be grown at low processing temperatures on arbitrary substrates, and can be patterned via electron beam lithography. We demonstrate the scalable, lithographically integrated fabrication of hybrid quantum magnonic devices consisting of a thin-film superconducting resonator coupled to a low-damping, thin-film V[TCNE]$_x$ microstructure. Our devices operate in the strong coupling regime, with a cooperativity as high as 1181(44) at T$\sim$0.4 K, suitable for scalable quantum circuit integration. This work paves the way for the exploration of high-cooperativity hybrid magnonic quantum devices in which magnonic circuits can be designed and fabricated as easily as electrical wires.

quant-ph

Exploring a quantum-information-relevant magnonic material: Ultralow damping at low temperature in the organic ferrimagnet V[TCNE]x

Quantum information science and engineering requires novel low-loss magnetic materials for magnon-based quantum-coherent operations. The search for low-loss magnetic materials, traditionally driven by applications in microwave electronics near room-temperature, has gained additional constraints from the need to operate at cryogenic temperatures for many applications in quantum information science and technology. Whereas yttrium iron garnet (YIG) has been the material of choice for decades, the emergence of molecule-based materials with robust magnetism and ultra-low damping has opened new avenues for exploration. Specifically, thin-films of vanadium tetracyanoethylene (V[TCNE]x) can be patterned into the multiple, connected structures needed for hybrid quantum elements and have shown room-temperature Gilbert damping (α = 4 \times 10^-5) that rivals the intrinsic (bulk) damping otherwise seen only in highly-polished YIG spheres (far more challenging to integrate into arrays). Here, we present a comprehensive and systematic study of the low-temperature magnetization dynamics for V[TCNE]x thin films, with implications for their application in quantum systems. These studies reveal a temperature-driven, strain-dependent magnetic anisotropy that compensates the thin-film shape anisotropy, and the recovery of a magnetic resonance linewidth at 5 K that is comparable to room-temperature values (roughly 2 G at 9.4 GHz). We can account for these variations of the V[TCNE]x linewidth within the context of scattering from very dilute paramagnetic impurities, and anticipate additional linewidth narrowing as the temperature is further reduced.

physics.app-ph