Synopsis

Hyperdoped Silicon Photodiode Sets Efficiency Record

• Physics 19, s97
A new light-trapping architecture could lead to CMOS-compatible night-vision technology.
E. García-Hemme et al. [1]

Short-wave-infrared (SWIR) light can penetrate materials that absorb or scatter visible light, such as plastic and fog. SWIR imaging therefore reveals details invisible to conventional cameras, making it a valuable tool for night-vision and industrial applications. But high-performance SWIR cameras rely on specialized sensors that require cryogenic cooling and whose creation is both environmentally harmful and incompatible with mature complementary-metal-oxide-semiconductor (CMOS) fabrication processes. Eric Garcia-Hemme of the Complutense University of Madrid and his colleagues have now presented a CMOS-compatible photodiode for room-temperature SWIR detection [1].

The researchers created their photodiode using a 250-µm-thick silicon wafer. On one side of the silicon, they implanted extremely high concentrations of tellurium ions, which are known to improve bulk silicon’s sub-band-gap optical absorption. On top of that, Garcia-Hemme and colleagues added pyramid-like structures etched on the surface, topped by a 200-nm-thick gold back reflector. These light-trapping features were intended to extend the optical path within the hyperdoped layer, thereby boosting absorption at energies below silicon’s band gap. To complete the device, they added an electrode on the opposite face.

Measuring the device’s transmission and absorption at different wavelengths revealed two improvements compared to standard photodiode designs. First, the structured surface increased absorption from 25% to 85%. Second, the device’s quantum efficiency—how comprehensively it transforms incident photons into an electrical signal—at SWIR wavelengths exceeded that of state-of-the-art silicon sensors by more than an order of magnitude. The researchers found the mechanism behind this high quantum efficiency when they analyzed the device’s charge-transport properties. They discovered that an applied voltage caused photoexcited electrons to tunnel between the tellurium band and the host silicon. This quantum shortcut meant that charges were extracted quickly—before they could recombine with the residual holes in the tellurium.

–Rachel Berkowitz

Rachel Berkowitz is a Corresponding Editor for Physics Magazine based in Vancouver, Canada.

References

  1. E. García-Hemme et al., “Breakthrough in short-wavelength infrared quantum efficiency in Te-hyperdoped silicon photodetectors via light-trapping strategies,” Phys. Rev. Lett. 137, 057002 (2026).

Subject Areas

Semiconductor PhysicsCondensed Matter PhysicsMaterials Science

Related Articles

Snapshot: In the Eye of the Beholder
Materials Science

Snapshot: In the Eye of the Beholder

The shape of gold nanostructures changes depending on how they are imaged. Read More »

The Giant Permittivity of Nanoconfined Water
Nanophysics

The Giant Permittivity of Nanoconfined Water

Researchers have proposed that long-range molecular dipole correlations alter water’s electrical properties when it’s confined in a gap a few nanometers wide. Read More »

The Unexpected Ubiquity of the Phonon Thermal Hall Effect
Condensed Matter Physics

The Unexpected Ubiquity of the Phonon Thermal Hall Effect

The discovery of a thermal version of the Hall effect in common semiconductors challenges our understanding of how magnetic fields and heat fluxes interact within solids. Read More »

More Articles