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K. Heinselman

Publications and source records attributed to K. Heinselman.

2 recordsLinked to original sources

Silicon Implantation and Annealing in $β$-Ga$_2$O$_3$: Role of Ambient, Temperature, and Time

Optimizing thermal anneals of Si-implanted $β$-Ga$_2$O$_3$ is critical for low resistance contacts and selective area doping. We report the impact of annealing ambient, temperature, and time on activation of room temperature ion-implanted Si in $β$-Ga$_2$O$_3$ at concentrations from 5x10$^{18}$ to 1x10$^{20}$ cm$^{-3}$, demonstrating full activation (>80% activation, mobilities >70 cm$^{2}$/Vs) with contact resistances below 0.29 $Ω$-mm. Homoepitaxial $β$-Ga$_2$O$_3$ films, grown by plasma assisted MBE on Fe-doped (010) substrates, were implanted at multiple energies to yield 100 nm box profiles of 5x10$^{18}$, 5x10$^{19}$, and 1x10$^{20}$ cm$^{-3}$. Anneals were performed in a UHV-compatible quartz furnace at 1 bar with well-controlled gas composition. To maintain $β$-Ga$_2$O$_3$ stability, $p_{O2}$ must be greater than 10$^{-9}$ bar. Anneals up to $p_{O2}$ = 1 bar achieve full activation at 5x10$^{18}$ cm$^{-3}$, while 5x10$^{19}$ cm$^{-3}$ must be annealed with $p_{O2}$ <10$^{-4}$ bar and 1x10$^{20}$ cm$^{-3}$ requires $p_{O2}$ <10$^{-6}$ bar. Water vapor prevents activation and must be maintained below 10$^{-8}$ bar. Activation is achieved for anneal temperatures as low as 850 °C with mobility increasing with anneal temperature up to 1050 °C, though Si diffusion has been reported above 950 °C. At 950 °C, activation is maximized between 5 and 20 minutes with longer times resulting in decreased carrier activation (over-annealing). This over-annealing is significant for concentrations above 5x10$^{19}$ cm$^{-3}$ and occurs rapidly at 1x10$^{20}$ cm$^{-3}$. RBS (channeling) suggests damage recovery is seeded from remnant aligned $β$-Ga$_2$O$_3$ that remains after implantation; this conclusion is also supported by STEM showing retention of the $β$-phase with inclusions that resemble the $γ$-phase.

cond-mat.mtrl-sci

Driving Perpendicular Heat Flow: Ambipolar Transverse Thermoelectrics for Microscale and Cryogenic Peltier Cooling

Whereas thermoelectric performance is normally limited by the figure of merit ZT, transverse thermoelectrics can achieve arbitrarily large temperature differences in a single leg even with inferior ZT by being geometrically tapered. We introduce a band-engineered transverse thermoelectric with p-type Seebeck in one direction and n-type orthogonal, resulting in off-diagonal terms that drive heat flow transverse to electrical current. Such materials are advantageous for microscale devices and cryogenic temperatures -- exactly the regimes where standard longitudinal thermoelectrics fail. InAs/GaSb type II superlattices are shown to have the appropriate band structure for use as a transverse thermoelectric.

cond-mat.mtrl-sci