The Pulse · Power Sources · 2015-2024

The Nuclear Line: reviving the atomic heartbeat

US 10,096,393US 10,811,157US 11,881,325US 10,818,811US 11,189,390

A cross-section of the whole betavoltaic cell: a sponge-like tangle of interconnected 3D nanostructures, each lobe traced with thin coating layers, filling the gap between two flat electrode plates top and bottom.
From the album · US 10,096,393 · FIG. 1A A cross-section of the whole betavoltaic cell: a sponge-like tangle of interconnected 3D nanostructures, each lobe traced with thin coating layers, filling the gap between two flat electrode plates top and bottom.

The historical arcT2 · external source

Medtronic has been here before. The first nuclear-powered pacemaker was implanted in 1970 (Doyle, "Rise and Fall of the Nuclear Pacemaker"), and in the early 1970s Medtronic teamed with the French company Alcatel on a plutonium-238-powered pacemaker whose decay heat drove a thermoelectric stack (Medical Design & Outsourcing). Hundreds were implanted (a Newark hospital alone tracked 155 units; one French series counted 325 patients — Doyle), and the longevity was astonishing: one 1973 recipient's device was still pacing 34 years later, where a chemical battery would have demanded repeated replacement surgeries (ORAU Museum of Radiation, accessed 2026-07-22; details re-attributed to their specific sources after adversarial QA). The approach faded — regulation, plutonium logistics, and the lithium-iodine battery won — but the dream (a power source that outlives the patient's need) never died.

Plutonium-238 oxide pellet glowing under its own decay heat
The old dream, photographed: a pellet of plutonium-238 glowing by its own decay heat. The 1970s pacemakers ran on exactly this warmth — one 1973 recipient’s device was still pacing thirty-four years later. Plutonium-238 oxide pellet glowing under its own decay heat — U.S. Department of Energy, public domain, via Wikimedia Commons.

The problemT1 · from the patentUS10096393B2

Modern betavoltaics skip the heat step: beta particles from a decaying isotope strike a semiconductor junction and generate electron-hole pairs directly, like a solar cell lit by radiation instead of sunlight. The catch — per the patent's description of what its 3D architecture improves (the background itself is a neutral recital of prior converters): flat junctions offer limited collection surface, and charge carriers can recombine before they're collected.

The principleT1 · from the patentUS10096393B2

Make the collector three-dimensional. Claim 1 builds the converter around a 3D current collector — nanorods, nanotubes, metal foam — coated with a charge-carrier separator (quantum dots are among the named embodiments) and a hole-conductor layer, with the radiation source placed so particles strike the separator. The nanostructure can "maximize a surface area … for any given volume" (verbatim, ellipsis ours), so far more of each particle's energy finds a junction before recombining. Named fuel candidates run from tritium to Ni-63 to Sr-90. A sibling line (US10818811) takes a different path: isotope → phosphor light → photovoltaic — a glow-in-the-dark battery, hermetically sealed by the same packaging craft as everything else in the corpus.

Plain-English registerT3 · interpretationconfidence: high

A flat solar panel wastes a floodlight shining from every direction. Crumple the panel into a sponge and hang the light inside it, and almost every ray lands on a working surface. That's the 3D collector — a sponge for radiation.

Set-piece · decay as a battery

Ni-63 film · beta emitter, 100-year half-life β⁻ 3-D collector · every fold within one beta range of a junction
The modern bet skips the heat entirely. Beta particles rain out of a nickel-63 film into a sponge-like three-dimensional collector, folded so that every atom of fuel sits within one beta’s range of a junction. Each capture pays out electron–hole pairs — a trickle of current, but a trickle with a hundred-year half-life.

Honest statusT3 · interpretationconfidence: medium

Five grants (2018–2024) and sustained follow-on filings show real Medtronic investment, but no public source indicates a shipped nuclear-powered Medtronic product today — we don't claim one. What the record supports: this is forward-looking R&D reconnecting the company to its own atomic history, aimed at the same prize the 1970 device chased — implants that never need a battery change.

Americium-241 source emitting alpha particles inside a cloud chamber
What the fuel is doing, made visible: an engineered radioisotope source shedding particle tracks in a cloud chamber. Decay is not a metaphor — it is a rain you can photograph, and a battery you can neither recharge nor switch off. Americium-241 source emitting alpha particles inside a cloud chamber — Nuledo, CC BY-SA 4.0, via Wikimedia Commons.
Installing a GPHS-RTG on the Cassini spacecraft, Launch Complex 40
The aerospace cousin: engineers bolting a radioisotope generator onto the Cassini spacecraft. Deep space and the human chest set the same problem — decades of power, no service calls — and this line of patents answers it at the scale of a grain of rice. Installing a GPHS-RTG on the Cassini spacecraft, Launch Complex 40 — NASA, public domain, via Wikimedia Commons.

Set-piece note (for Presentation)T3 · interpretation

Split-screen: 1970 archive-styled Pu-238 pacemaker (thermal glow) fades into the modern converter — camera inside the nanostructure sponge, beta particles streaking in, each strike lighting a junction like rain on water. History → future in one dissolve. (Patent figures are public domain; period imagery needs sourcing/licensing care.)

From the family album

A magnified slice through one coated wall of the sponge, with quantum dots drawn as dark circles in the layer stack and arrows tracing beta particles striking in and freed electric charges being pulled apart across the layers.
Plate I · US 10,096,393 · FIG. 1B A magnified slice through one coated wall of the sponge, with quantum dots drawn as dark circles in the layer stack and arrows tracing beta particles striking in and freed electric charges being pulled apart across the layers.
A close-up cross-section of an alternate layer stack, again with quantum dots embedded in the coating and arrows showing radiation particles arriving and the resulting positive and negative charges separating toward opposite layers.
Plate II · US 10,096,393 · FIG. 2 A close-up cross-section of an alternate layer stack, again with quantum dots embedded in the coating and arrows showing radiation particles arriving and the resulting positive and negative charges separating toward opposite layers.
A cross-section of an embodiment where the radioactive fuel itself, drawn as a scatter of dark particles, is embedded inside the collector body beneath the coating layers instead of shining in from outside.
Plate III · US 10,096,393 · FIG. 3 A cross-section of an embodiment where the radioactive fuel itself, drawn as a scatter of dark particles, is embedded inside the collector body beneath the coating layers instead of shining in from outside.
A sparse cross-section of the curved layer stack with a single dark particle lodged in one coating layer, illustrating the simplest case of a source particle sitting within the converter's skin.
Plate IV · US 10,096,393 · FIG. 4 A sparse cross-section of the curved layer stack with a single dark particle lodged in one coating layer, illustrating the simplest case of a source particle sitting within the converter's skin.