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I'm not an expert on quartz luminescence, and I'm definitely not claiming I recreated NASA's experiment exactly. This is just the best explanation I've found for what I'm seeing here, so if you know more about this stuff, feel free to chime in. NASA actually published a paper on something very similar called Observation of Quartz Cathode-Luminescence in a Low Pressure Plasma Discharge. In their experiment, they exposed quartz powder to an RF excited argon plasma and got an intense, steady glow from the quartz. Their explanation was basically that energetic electrons from the plasma hit the quartz and excite electronic states inside the material. When those states relax back down, that energy gets released as visible light. But here's where it gets really cool. They measured the light coming from the quartz from about 400 to 850 nanometers, covering basically the entire visible spectrum and even stretching into the near infrared. The emission was so broad and intense that it actually started washing out the individual spectral lines from the argon plasma that was exciting it. They even looked at whether the quartz was simply getting ridiculously hot and glowing like a normal hot object. According to the paper, producing that spectrum through heat alone would imply a temperature around 4,800 K. The quartz would've been destroyed long before reaching that, so they concluded that electron induced luminescence was the primary mechanism. And that's why this experiment caught me so off guard. Most of the time my high voltage just arcs around this rock. But when I hit the quartz at exactly the right spot and angle, the arc stays relatively small while the entire rock suddenly lights up like a damn light bulb. Is that exactly the same phenomenon NASA documented? I can't prove that without doing spectroscopy on it. But quartz cathode luminescence is by far the coolest explanation I've found so far, and it describes what I'm seeing surprisingly well.
I'm not an expert on quartz luminescence, and I'm definitely not claiming I recreated NASA's experiment exactly. This is just the best explanation I've found for what I'm seeing here, so if you know more about this stuff, feel free to chime in. NASA actually published a paper on something very similar called Observation of Quartz Cathode-Luminescence in a Low Pressure Plasma Discharge. In their experiment, they exposed quartz powder to an RF excited argon plasma and got an intense, steady glow from the quartz. Their explanation was basically that energetic electrons from the plasma hit the quartz and excite electronic states inside the material. When those states relax back down, that energy gets released as visible light. But here's where it gets really cool. They measured the light coming from the quartz from about 400 to 850 nanometers, covering basically the entire visible spectrum and even stretching into the near infrared. The emission was so broad and intense that it actually started washing out the individual spectral lines from the argon plasma that was exciting it. They even looked at whether the quartz was simply getting ridiculously hot and glowing like a normal hot object. According to the paper, producing that spectrum through heat alone would imply a temperature around 4,800 K. The quartz would've been destroyed long before reaching that, so they concluded that electron induced luminescence was the primary mechanism. And that's why this experiment caught me so off guard. Most of the time my high voltage just arcs around this rock. But when I hit the quartz at exactly the right spot and angle, the arc stays relatively small while the entire rock suddenly lights up like a damn light bulb. Is that exactly the same phenomenon NASA documented? I can't prove that without doing spectroscopy on it. But quartz cathode luminescence is by far the coolest explanation I've found so far, and it describes what I'm seeing surprisingly well.

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