Play PlayStation 2 And XBox 1 Games On Your Jailbroken PS5

Whereas PlayStation 3 and earlier were rather specialized consoles, today’s consoles like the PlayStation 5 are essentially x86-based gaming PCs in a fancy case, with custom firmware to lock it all down. Once you’re past those gates, however, you can use it to run pretty much anything. Naturally, this also means porting PlayStation 2 and Xbox 1 emulators to the PS5, in the form of the PS5X2 and XPSemu projects respectively.

In addition, Videocardz reports that Wine is being ported to the PS5 as its Proton iteration popularized by Valve’s SteamOS. This ‘PP’ project — for PS5 Proton — has no public releases yet, but it could mean that playing Windows games on your PS5 could also become reality.

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Using Vibration To Make Stuff Stick Contact-Free To Ceilings

Generally making stuff stick to something like a ceiling requires resorting to suction cups, glue or something much more permanent, but [Steve Mould] starts his video featuring a playing card that is clearly defying gravity with no such measures. All that it seems to take is the small vibration motor placed on said playing card, with its vibrations making the card stick like a kind of magic trick.

Although the easy explanation would be that it creates a kind of Bernoulli grip – a common pneumatic, contactless gripping device – [Steve] explains how it’s more complex than that. This vibration adhesion effect doesn’t rely on the same constant pressure drop that a Bernoulli grip experiences within the small gap between the surface and the object. Although a gap is present, it’s much smaller in this case.

Of note is that this effect only occurs when the object is made of a flexible enough material that can vibrate along with the vibration source, in the form of a motor or transducer. As demonstrated in the video, this creates standing waves that affect the surrounding air. When pushed against a rigid surface, these standing waves change into travelling waves, which result in the air that enters this small gap constantly being pushed out and thus lowering the air pressure.

The air pressure between the rigid and flexible surfaces thus becomes lower than that of the surrounding air, creating the resulting suction effect without touching the surface as something like a suction cup would.

One can imagine practical uses for this effect much like with Bernoulli grips. These are especially common in the semiconductor industry for handling delicate items like silicon wafers with zero risk of contamination. In the video it’s shown how you can use the effect to even hold the weight of a person, though they failed to get past a few dozen kilograms with the used setup involving a 400 Watt transducer, possibly due to their ‘ceiling’ not being rigid enough, leading to energy loss.

There are also papers such as this 2025 one by [Siquan Li] et al. who suggest a ‘Micro-Vibration Adhesion’  (VBA) system to help small robots climb up walls for use in repairs and inspection. In their experimental setup they found an adhesion-to-weight ratio exceeding 51 times, making it an interesting way to have small robots defy gravitational pull without a complicated mechanism.

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Teardown Of A USB-C Cable With Integrated LCD

The past years we have been seeing screens pop up in many new places, but seeing them in USB-C cables is still a bit of a novel thing. Out of sheer curiosity [Aaron Christophel] recently took apart one of these, to see what’s inside and what else you can do with them beyond fondling its single touch control and watch reported voltages and current.

Naturally, these devices aren’t exactly meant to be serviced by anyone, so the biggest challenge is to get into them without too much violence. Risking a blood sacrifice to the Hardware Gods, [Aaron] first attacks the display cover of this €15, 240 Watt-rated UGreen cable with sharp utensils before just taking apart the aluminium case, which ultimately gets him inside.

After this it’s clear that attacking the display cover was the right way, just requiring knowing where to apply pressure in order to invert the assembly process. Following that it’s less clear how it was assembled, though it may have involved liberal amounts of glue after sliding in the components. Rather than bothering with applying heat, instead some side-cutters quickly take care of that pesky aluminium shell.

The tiny IPS LC display is attached via a flat flex cable to the PCB with a connector, with the PCB featuring multiple voltage regulators, a MOSFET for the backlight and other parts in addition to the EN32LF056 marked MCU. After some prodding on the exposed SWD interface, it was confirmed to be a Cortex-M0+-based MCU with 64 kB of Flash and 4 kB of SRAM, which made it easy enough to use the little display to display some video frames of everyone’s favorite artist.

Since this MCU is only wired up to measure currents and voltages it cannot use the USB interface, but with some knowledge of how to non-destructively disassemble one of these connectors at least to the point of accessing the SWD pads underneath the display it could be a fun party trick to reflash the firmware with something custom.

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The Game Boy Test Lab Provides A Cartridge-Sized Diagnostic Lab

Most of the time when you see a repair video of a Game Boy it’ll be demonstrated with a cartridge inserted and booting up into the game, but does this actually mean that the system is truely fully functional? There can still be more intermittent faults, dodgy buttons, or even something like a defective link port — all of which can be much harder to detect than firing up a copy of Tetris. This is where the GB Test Lab cartridge by [Marcel Pflug] of the Game Boy Museum comes into play.

With the freely available ROM put on an EverDrive or similar flash cartridge, you can test a whole range of functions of the original Game Boy (DMG-01), most of them autonomously and some with some user input.

This is similar to the test cartridge that Nintendo themselves used in the form of the DMG-AGING-01, which validated the basic functionality of the handheld. Since then a myriad of test cartridges have been created by the homebrew community, but not all try to test quite literally everything possible. In the case of the GB Test Lab this includes the typical like CPU, RAM, interrupts, etc., but also key bounce time, intermittent connectivity and playing a game of Pong between two GBs connected by link cable as well as using the GB Printer.

Results are saved per GB and persisted if the flash cartridge has battery backup or similar. Overall it seems quite comprehensive and something that’s worth giving a shot if you’re the kind of person who owns one or more GBs. Perhaps the neatest part of this ROM is that it also contains a built-in reference for all the components and other useful details, including how to interpret results and symptoms.

Two diaphragm vacuum pump setups with high-tech jam jar vacuum vessel. (Credit: Maya Posch)

Vacuum Drying And Making Stuff Hot In A Vacuum

After previously exploring the impact of vapor pressure on the drying of desiccant and more, the conclusion was essentially that in order to drive moisture that’s not directly on a material’s surface out of it, you pretty much have to heat up said material to make the process not take forever. Of course, we’d still want to retain the vacuum while doing said heating, which raises the question of how you best heat something that is inside a vacuum.

Fortunately, this is a solved problem, with commentators to the previous article helpfully pointing to the existence of devices like vacuum ovens. Of course, you can either buy such a device and not worry your pretty little head about the finer details, or you can defy convention and build one yourself because you’re a rebel and really want to know how their internals work.

Thus in this article we’ll be taking a look at the finer details of generating thermal radiation and how to best heat up a sample inside a vacuum chamber without directly picking easy mode with microwaves.

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Quantum computer

Will Superconducting Transistors Help Quantum Computers?

Despite all the glamorous promises made about quantum computing, it’s hard to make the argument that today’s quantum computers hold a candle to the sheer practicality of classical computers, especially when qubits need to be cuddled at cryogenic temperatures inside a cryostat. This is worsened by the problem that regular semiconductor transistors do not really appreciate these same cryogenic temperatures, creating an awkward interfacing problem for the controlling electronics.

Now a new pitch here is to create superconducting transistors that will happily work at temperatures near absolute zero. In an article in IEEE Spectrum this start-up – called S-Transistors – and their concept are covered.

By being able to have the control circuits inside the same cryostat, one can forego the absolute mess of wiring that has to penetrate it, and with it one major failure point. Their proposed solution uses the same Josephson junctions (JJs) that are also used for qubits, using a high enough current to briefly make it non-superconducting, inducing a voltage pulse that can be detected.

In addition, JJ-based field effect transistors (JJFETs) are used, with this 2025 paper by [Yusheng Xiong] et al. detailing these structures. Here S–Transistors claims that they are now able to manufacture JJFETs at scale, which would be another major breakthrough that could bring quantum computing just a little bit closer.

They’d be competing with cryogenic CMOS (Cry-CMOS), which can use standard semiconductor production lines to create circuits that can withstand cryogenic temperatures, albeit not quite a the near-zero K level that these superconducting transistors and JJFETs would be capable of.

Apple Finally Made AirPods Repairable… Sort Of

It’s been true for a while now that Apple’s AirPods have been effectively disposable, with [iFixit] slapping each successive generation with an abysmal 0/10 repairability score. The moment that any of the built-in batteries faltered you could effectively toss the whole package out as e-waste.

Interestingly, with the fifth generation it would seem that a battery swap in the earbuds is now actually possible without whole-scale destruction, according to the [iFixit] teardown video.

Although it’s still a far cry from the demonstrated FairBuds battery replacement, this time around a bit of gentle heat allows for the glued-together earbud to cleanly separate, with inside a socketed coin cell. The catch here is that the polarity on these sockets differs between the left and right earbud, which was discovered after a quick swap.

Unfortunately this same easy-to-open change doesn’t carry over to the case for the earbuds, which still requires  physical destruction of the plastic to get to its battery. Accordingly [iFixit] gives this generation of AirPods a generous 2/10. Although a step in the right direction, it seems clear that if repairability or even simply being able to replace the batteries is a concern, the AirPod’s probably aren’t for you.

Last year’s third generation AirPods made [iFixit] really angry, so this is borderline glowing praise. Of course, the issue with non-removable batteries remains a problem, especially when new EU regulations that should have fixed this get watered down.

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