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in space.”

Arcot exhaled slowly before answering, watching the column of smoke vanish into the air.

“I thought of that, and I’ve been trying to think of other, and if possible, better, cheaper, and quicker ways of getting the necessary power.

“Let’s eliminate the known sources one by one. The usual ones, the ones men have been using for centuries, go out at once. The atomic hydrogen reaction stores more energy per gram than any other chemical reaction known. Such things as the storage battery, the electrostatic condenser, the induction coil, or plain heat storage, are worthless to us. The only other method of storing energy we know of is the method used by the Kaxorians in driving their huge planes.

“They use condensed light-energy. This is efficient to the ultimate maximum, something no other method can hope to attain. Yet they need huge reservoirs to store it. The result is still ineffective for our purpose; we want something we can put in a small space; we want to condense the light still further. That will be the ideal form of energy storage, for then we will be able to release it directly as a heat ray, and so use it with utmost efficiency. I think we can absorb the released energy in the usual cavity radiator.”

A queer little smile appeared on Arcot’s face. “Remember⁠—what we want is light in a more condensed form, a form that is naturally stable, and that does not need to be held in a bound state, but actually requires urging to bring about the release of energy. For example⁠—”

A shout from Wade interrupted him. “That’s really rare! Whoo⁠—I have to hand it to you! That takes all the prizes!” He laughed delightedly. In puzzled wonder Morey and the two older men looked at him, and at Arcot who was grinning broadly now.

“Well, I suppose it must be funny,” Morey began, then hesitated. “Oh⁠—I see⁠—say, thatis good!” He turned to his father. “I see now what he’s been driving at. It’s been right here under our noses all the time.

“The light-matter windows we found in the wrecked enemy ships contain enough bound light-energy to run all the planes we could make in the next ten years! We’re going to have the enemy supply us with power we can’t get in any other way. I can’t decide, Arcot, whether you deserve a prize for ingenuity, or whether we should receive booby-prizes for our stupidity.”

Arcot senior smiled at first, then looked dubiously at his son.

“There’s definitely plenty of the right kind of energy stored there⁠—but as you suggested, the energy will need encouragement to break free. Any ideas?”

“A couple. I don’t know how they’ll work, of course; but we can try.” Arcot puffed at his pipe, serious now as he thought of the problems ahead.

Wade interposed a question. “How do you suppose they condense that light energy in the first place, and, their sun being dead, whence all the light? Back to the atom, I suppose.”

“You know as much as I do, of course, but I’m sure they must break up matter for its energy. As for the condensation problem, I think I have a possible solution of that too⁠—it’s the key to the problem of release. There’s a lot we don’t know now⁠—but we’ll have a bigger store of knowledge before this war is over⁠—if we have anything at all!” he added grimly. “It’s possible that man may lose knowledge, life, his planets and sun⁠—but there’s still plenty of hope. We’re not finished yet.”

“How do you think they got their energy loose?” asked Wade. “Do you think those big blocks of what appeared to be silver were involved in the energy release?”

“Yes, I do. Those blocks were probably designed to carry away the power once it was released. How the release was accomplished, though, I don’t know. They couldn’t use material apparatus to start their release of material energy; the material of the apparatus might ‘catch fire’ too. They had to have the disintegrating matter held apart from all other matter. This was quite impossible, if you are going to get the energy away by any method other than by the use of fields of force. I don’t think that is the method. My guess is that a terrific current of electricity would accomplish it if anything would.

“How then are we going to get the current to it? The wires will be subject to the same currents. Whatever they do to the matter involved, the currents will do to the apparatus⁠—except in one case. If that apparatus is made of some other kind of matter, then it wouldn’t be affected. The solution is obvious. Use some of the light-matter. What will destroy light-matter, won’t destroy electricity-matter, and what will destroy electricity-matter, won’t disturb light-matter.

“Do you remember the platform of light-metal, clear as crystal? It must have been an insulating platform. What we started as our assumptions in the case of the light-metal, we can now carry further. We said that electricity-metals carried electricity, so light-metals would carry or conduct light. Now we know that there is no substance which is transparent to light, that will carry electricity by metallic conduction. I mean, of course, that there is no substance transparent to light, and at the same time capable of carrying electricity by electronic transmission. True, we have things like NaCl solutions in ordinary H2O which will carry electricity, but here it’s ionic conduction. Even glass will carry electricity very well when hot; when red hot, glass will carry enough electricity to melt it very quickly. But again, glass is not a solid, but a viscous liquid, and it is again carried by ionic conduction. Iron, copper, sodium, silver, lead⁠—all metals carry the current by means of electron drift through the solid material. In such cases we can see that no transparent substance conducts electricity.

“Similarly, the reverse is true. No substance capable of carrying electricity by metallic conduction is transparent. All are opaque, if in any thickness. Of course, gold

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