Nature of Real Applications Quantum Mechanics

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Nature of "Real" Applications Quantum Mechanics

I've heard of several applications of quantum mechanics such as atomic clocks, transistors, lasers, etc. I understand how we need quantum mechanics to understand what's going on, but how exactly is quantum mechanics used in any sort of "real world" application? It seems like it would be crazy to use QM to calculate a lot of things. I'm an engineering student so I've only done basic calculations in QM such as quantum harmonic oscillators, simple potential wells, etc. and even in relatively simple stuff it seems like the problems are purely academic. Doing problems definitely can be interesting and gives insight into how QM works, but seems unrealistic to work with. So is QM mostly used qualitatively when actually designing something or even less directly as to just get the idea of what could be done like with Einstein coming up with the idea behind the laser?
 
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You're an engineering student. Would you accept a non-quantitative answer like "um...I need a support there to be kinda big. Yeah...make it big." Probably not.

QM allows quantitatve design of.."atomic clocks, transistors, lasers, etc." If you can't design an atomic clock with what you know so far, it's no different than not being able to design an airplane on your first day of engineering classes.
 
Not an expert in QM. AFAIK, Schrödinger's equation is quite different from the classical wave equation. The former is an equation for the dynamics of the state of a (quantum?) system, the latter is an equation for the dynamics of a (classical) degree of freedom. As a matter of fact, Schrödinger's equation is first order in time derivatives, while the classical wave equation is second order. But, AFAIK, Schrödinger's equation is a wave equation; only its interpretation makes it non-classical...
Insights auto threads is broken atm, so I'm manually creating these for new Insight articles. Towards the end of the first lecture for the Qiskit Global Summer School 2025, Foundations of Quantum Mechanics, Olivia Lanes (Global Lead, Content and Education IBM) stated... Source: https://www.physicsforums.com/insights/quantum-entanglement-is-a-kinematic-fact-not-a-dynamical-effect/ by @RUTA
Is it possible, and fruitful, to use certain conceptual and technical tools from effective field theory (coarse-graining/integrating-out, power-counting, matching, RG) to think about the relationship between the fundamental (quantum) and the emergent (classical), both to account for the quasi-autonomy of the classical level and to quantify residual quantum corrections? By “emergent,” I mean the following: after integrating out fast/irrelevant quantum degrees of freedom (high-energy modes...
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