Earlier quoted context omitted.
Definitely worth mentioning in the article, but not a big concern. Even if this plane actually comes to market and is successful according to their wildest hopes, it'll only be a very tiny fraction of the aviation market. This is due to many factors: small cabin, limited capacity, limited routes (only over water)...
> it'll only be a very tiny fraction of the aviation market. So is everyone driving in the morning: a tiny fraction of the transport pollution. Add every tiny fraction and you get a significant fraction. To add to staceymakano's point: in the transport industry, I feel very uncomfortable when a a new alternative doesn't perform better on the environmental side.
Not even remotely true in this case. Aviation accounts for about 2% of carbon emissions, by my cursory Google search. Boom aircraft will, in the absolute best of outcomes, never account for more than a very small fraction of that number. And a small fraction of 2% is still, no matter how one tries to spin it, a very small fraction.
In any event, power (P) required to increase velocity (V) is a cubic relationship (P=FV, where F is the drag force, which has as one of its components V^2), so doubling speed requires 8 times the power. There are ways to mitigate that increase -- fly higher to reduce air density, reduce drag by using specialized airfoils and reducing excrescence, take advantage of increasing engine efficiencies, etc. -- but I think it's safe to say that a supersonic aircraft will always require gobs more fuel than its subsonic cousins. By your logic then, one should probably never be manufactured.
Full disclosure: I once worked as an aerospace engineer.