Very good research and write-up! The quantum dot LEDs first appeared in force about 20 years ago, about a decade after the OLED technology which was also supposed to make conventional LEDs obsolete. Based on the progress so far I have a different view on their likelihood to usurp the inorganic LED. So far it has not been possible for QD-LEDs to get anywhere even close to the system efficacy of inorganic white light LEDs, and the lifetime remains a very severe obstacle. It is challenging to achieve even a couple of thousand hours at the high brightness levels required for practical general lighting. Many people do not realise this, when they buy a QD LED display, that it will quickly dim in output and require replacement after a few years. But today we have the bizarre world that people have become used to and indeed expect to replace expensive things like TV sets and monitor displays more frequently than their lights!
Perhaps the biggest advantage of QD-LEDs is the possibility to tune their spectral power distribution to achieve extremely narrow spectral bandwidths. As correctly noted, this is of very high value to the display industry, where saturated red, green and blue components are required. But for general lighting we require broad spectra to achieve a high colour rendering index. In such cases, QD-LED technology would actually be a hindrance rather than a help. When combined with their low efficacy and short life, I therefore do not envisage a time certainly in the next 20 years or so when QD-LEDs will find their way into general lighting.
What is very interesting though, is the associated technology of QD phosphors. These do offer interesting possibilities when combined with the classic blue-pump inorganic LED to generate broad spectrum white light, and possibly with higher efficacy and better life than the existing Garnet and Nitride phosphors that dominate the LED lighting industry. However, those themselves have already been made so efficient that we should not expect any further drastic increases in efficacy of light sources.

Thank you for your detailed and thoughtful response! Since standard phosphors are already hitting a wall, it makes you wonder: if we use narrow-band QD-phosphors to perfectly piece together a high-CRI white light, how will our eyes handle those tiny "dead zones" between the sharp color spikes over long periods, and could this kind of hyper-engineered light secretly trigger eye strain or make objects look weird under different angles?