G0HZU, thanks for the detailed replies! You've given me a lot to think about!
The transformer looks to be a conventional (and quite lossy?) 6:3 turn transformer (4:1 Z) and I'm used to seeing a transmission line transformer (TLT) here. Maybe the lossy transformer helps with stability up at VHF or UHF but otherwise I can't see the advantage. A TLT will offer lower loss over a much wider bandwidth and this includes the low frequency end because the 6:3 turn ratio transformer will have a fairly low primary inductance and this will cause a lot of loss down towards 1 MHz.
I think you are referring to something like a FT37-43 core with 10 bifilar turns wound on it, right? I see those frequently used in EMRFD for transforming 50 ohms to 200 ohms at the collector, with the next stage load attached at the center of the windings.
The high gain of the BJT (>20dB without the 6dB pad?) will make it harder to maintain a good input and output match across 1-50 MHz. I'm not sure why the 1uH inductor is there but maybe it helps compensate for something up at VHF.
I looked online at the SV1AFN website at the specs for that amplifier and I think the claims are a bit misleading. It isn't going to provide a 23dBm P1dB compression point because of the 6dB pad at the output. Also I don't see how it can work well down to 0.5 MHz unless several dB lower gain and a poor input match is acceptable. Having the higher gain will probably help with the noise figure so it might manage to produce a sub 4dB noise figure.
I was scratching my head over that 1uH inductor in the feedback too. So I ran my LTSpice gain and input impedance sims to 100MHz with and without it and saw no difference. But I left it in on my PCB design, for package protection for no other reason in case it turned out to be necessary. Regarding the 23dBm P1dB, my testing confirmed the 2N5109 does reach it...without the 6dB attenuator. Maybe that's what he meant? Just a guess.
Because of the high gain the input IP3 will be compromised. Maybe this was all done for a reason but it seems to be a slightly odd design. Maybe you could try reducing the gain and try a TLT and this may help give a better match over a wider bandwidth. You woukld probably see the most benefit down towards 1 MHz in this case.
I'm not familiar with some of the transistor types you are checking out but some of them don't look that good on their datasheet. It will be interesting to see how they perform in your tests.
I will add those to the list of things to try for round #2. And those mods should benefit all the transistors. Yes, I did deliberately include the 2SCR573 and BCP55, knowing that their specs didn't look so good for Ft and capacitance. I felt I needed a few marginal parts in the mix, if for no other reason than to prove my testing was good enough to detect differences in performance.
Also looks like I need to go study the Miller effect some more. I've seen several IF amplifiers use cascode designs to help mitigate it, but I hadn't run across a cascode design that could output power in this ballpark (~20dBm.)