Raspberry Pi RAM Restrictions No Big Deal, Frankly

Hacking on Raspberry Pi board internals is one of my favourite topics. I know a bunch of obscure things about these cute little boards. Three years ago, I covered a Raspberry Pi 4 RAM upgrade story. Getting a BGA RAM chip and swapping it in seemed like a no-brainer to me – apart from all the numerous uncertain parts about it, you know. It was a joy to see hackers pull it off, and for it to function as well as it did!

Things changed. You can’t really get RAM chips anymore. You also can’t get RAM sticks. You can’t get even SSDs with RAM chips on them. Even getting Raspberry Pi boards can be hard unless you know where to look. This is where a recent three-minute video by [Jeff Geerling] finds us.

Turns out, Raspberry Pi Foundation pushed binary-blob bootloader changes that limit your ability to upgrade RAM. I’ve known about it since last year through the grapevine, and somehow, as I read about it, this didn’t bother me at all. Not enough to write a Hackaday article about it, even, much less talk about it more widely. Why didn’t it bother me? Today, I sat down and pondered this for a bit.

Here’s my conclusion: I don’t think it’s a big deal at all, even if it seems that many people would disagree. Come in, as you are, and I hope you find my thoughts on the situation entertaining.

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Digital Upgrade Brings Medium Format Camera Into The 21st Century

Large format cameras can produce amazing shots, but are a bit too bulky to be practical. Medium format is a different story, as [Wenting] demonstrates with his Sitina B220M — an open-source digital back for the Mamiya Super 23 camera using a full-frame Kodak CCD.

“Digital back” just means he’s replacing the rear of an existing film camera in order to put a sensor where said film used to live. The sensor is a 22 Megapixel Kodak KAF-22000CE, which measures in at a very respectable 38.8 mm by 50 mm. That’s only a touch smaller than the rolls of 120 the camera was designed for, whose large dimension was 56 mm. How much was exposed at a time was determined by the back you put on the camera, but would never have been below 41.5 mm. Again, the CCD is pretty close.

With Mamiya covering the optics, [Wenting] could focus on the digital end. He’s got a Xilinx Zynq 7010 running the show, making use of both that SoC’s Cortex-A9 cores and its built-in FPGA. There’s some decent info on how that works in the build video embedded below, if you don’t want to dig into the code at the GitLab repository above. The photos look great, and start at 8:25.

[Wenting] has been around the bush with FPGAs before. Not least in his e-ink monitor project, but also with the last iteration of his mirror-less digital camera. This version is perhaps less ambitious, being merely a digital back and not the whole enchilada, but it solves some design issues he had on the “camera” part while he focuses on the “digital” for now.

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Raspberry Pi Locks Down RAM Upgrades

In a recent video [Jeff Geerling] addresses an issue discovered with the Raspberry Pi firmware, specifically how since around 2024 the firmware locks down what RAM size and even module is supported. This isn’t an issue that is widely known, probably because most people just use the board as-is, but it can be an unpleasant surprise for those looking to upgrade or repair their Pi.

Naturally there is a valid reason for wanting to prevent unscrupulous RAM module changes, with a [Geekworm] blog post from earlier this year detailing this exact issue and how each board is marked with a specific code that identifies the model, RAM size, RAM manufacturer and such. Based on the earlier linked forum post and also a 2025-era GitHub ticket on the rpi-eeprom project, the resulting symptoms seem to vary from not seeing the additional RAM to the board not booting at all.

Although you can go back to an older EEPROM firmware image to work around this, it’s still very annoying that this is even a thing. As also noted by [Jeff], the primary frustration here is probably one of ownership. When you can upgrade the RAM on just about any device you can buy, including a modern GPU and even Apple computer, but not on a Raspberry Pi board that loves to flaunt its open source/hardware credentials, then something is very much off.

In the end it’s highly unfortunate that Raspberry Pi has chosen this path that feels a bit too much like the hardware pairing that companies like Apple got rightfully called out on.

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Tiny Scratch-Built Cyberdeck Is In Mint Condition

[Salim Benbouziyane] shows off his TN Deck, a tiny custom cyberdeck built into an Altoids tin. It’s a skillful build that really makes the most of the available space, and includes not only screen and keyboard but also rechargeable power supply and speaker.

The TN Deck is built around the Raspberry Pi Compute Module Zero, which is essentially the same as a Pi Zero W but in a more compact, castellated PCB form factor intended to be integrated into other designs. [Salim]’s custom PCB also handles power, sound, and puts a custom keyboard at the front running QMK, which is pretty much the best choice for custom keyboards and macropads of all kinds.

A D-pad and some gamepad buttons come in handy. The slot in the center is for the speaker.

The keyboard itself is mostly 3D printed. Each button consists of a dome tactile switch on the PCB, covered with a thin and flexible membrane printed in TPU and topped with 3D-printed keycaps. The markings are courtesy of [Salim]’s desktop IR laser marking machine, because a little trial-and-error with lasers can yield good marks on 3D prints. [Salim] says the keys don’t have much travel and the ergonomics aren’t the best, but what it lacks in comfort it makes up for in small size and economical design.

We also really liked [Salim]’s use of a printed drill guide for putting precise holes in the Altoid tin for things like an audio jack, taking the guesswork out of tool positioning.

Some cyberdecks are made to suit specific needs, and others are made for the love of the game. The TN Deck is one of the latter and [Salim]’s previous CM Deck was a bit of both. We can’t wait to see what he makes next.

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A Computer Terminal The Old Way

Here in 2026 if we need a terminal the chances are we fire one up on our computer and continue on our way without a thought. What we are doing of course is emulating the experience of earlier hardware terminals, ones with a serial port on the back, a keyboard, a screen, or if they are a bit older, a teletype printer. [Sheila Dixon] is recreating that experience for the RC2014 retrocomputer, and she’s using some period-appropriate hardware and techniques.

Perhaps the most obvious thing about her build is her choice of printer. Sir Clive released a notoriously bad thermal printer for the ZX81, and it wasn’t long before a third-party alternative appeared in the form of the Alphacom. This printer connected directly to the ZX’s bus via its expansion port, and like the Sinclair printer, was serviced by ROM routines linked to BASIC commands. This is joined by a keyboard, first an MSX item, and then one she’s made with some retro typewriter keycaps.

She’s interfaced her Alphacom to the RC2014’s Z80 bus in the same way as it would be with the ZX81, and with a few teething troubles created some routines in a ROM to drive it as though it was the RC2014 terminal output. The keyboard is scanned using an 8255 I/O port card, much as it might have been back in the day.

If you’re curious about the Sinclair printer, we used one (without harming it!) for an April Fools’ joke during the pandemic. Meanwhile we have reviewed more than one RC2014 model, the most recent one being in 2019.

New Research Suggests That A Neutrino Laser Is Impossible

As cool as it would have been to wield lasers that produce a beam of neutrinos, recently two papers were published by MIT researchers that seem to dampen the likelihood of such lasers being at all possible. In a review paper by [Ana Maria Rey] et al. these two papers are investigated in more detail.

Although the concept behind a neutrino laser is rather simple, using the same superradiance effect involving a Bose-Einstein condensate (BEC) that allows for stimulation by photons to result in a synchronized direction of emitted photons, the idea of using a BEC of radioisotopes that naturally emit neutrinos in this fashion has now been effectively shot down.

The problem lies in taking the leap from photons with a BEC and applying this to a BEC of radioisotopes. Whereas photons are relatively low-energy at a mere 1 eV, a neutrino with 1+ MeV has a much greater kinetic effect on the particle that emitted it. Unlike a photon emitted by an atom, this leaves precious little time for the other particles in the BEC to be affected.

This first scenario is covered in the (paywalled) paper by [Yu-Kun Lu] et al. with their calculations showing that superradiance cannot occur with neutrinos in a BEC and thus a laser is impossible. In the (also paywalled) second paper by [Hanzhen Lin] et al. the question is asked whether the assumption that a BEC of a radioisotope will at all enhance radioactive decay, to which the answer is a curt ‘no’.

Although it’s impossible to prove a negative with the scientific method, these two studies have slammed close a couple of doors on the concept of a neutrino laser.

A man in a beige, vintage 90s suit rides a very small go cart with a look of terror and/or elation on his face.

The Mazda Suitcase Car Rides Again

Once you arrive at your destination via plane, it can be a drag waiting for a rental car. Why not bring your own with a replica of the Mazda suitcase car?

The heady days of the 90s brought us many wild vehicles from Japan, and in 1991, Mazda built three prototype go carts built inside Samsonite suitcases as a potential rival to the Honda Motocompo. After some appearances on the talk show circuit, two of the prototypes were destroyed, and the world moved on. [Bucket] felt wistful about the vehicle and decided it was time to build his own since the only remaining example is in collector hands, although they were able to reach out to the owner for more information on how the original prototypes functioned.

Using a very small gas motor from a pocket rocket and a welded aluminum frame inside the suitcase, the builders managed to beat the stated top speed of the original, hitting 33 kph (20 mph) before the driver decided things were getting too frightening. The final build tips the scales at 56.8 lbs, so some further refinement might even get it under the 50 lb airline limit.

Surprisingly, this isn’t the first suitcase-sized go cart we’ve seen. We wonder if a ride-able suitcase hovercraft is next?

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