Going from 1+1=2 to Quantum Mechanics Chaimongkol, 2026 Ehrenfest Theorem
Given observable A ^ \hat{A} A ^ expectation value of A ^ \hat{A} A ^
E [ A ( t ) ] = ⟨ ψ ( t ) ∣ A ( t ) ∣ ψ ( t ) ⟩ \mathbb{E}[A(t)]=\left\langle \psi(t) \right\rvert A(t)\left\lvert \psi(t) \right\rangle E [ A ( t )] = ⟨ ψ ( t ) ∣ A ( t ) ∣ ψ ( t ) ⟩ If we differentiate w.r.t time
d d t E [ A ( t ) ] = ( d d t ⟨ ψ ( t ) ∣ ) A ( t ) ∣ ψ ( t ) ⟩ + ⟨ ψ ( t ) ∣ A ( t ) ( d d t ∣ ψ ( t ) ⟩ ) \frac{d}{dt}\mathbb{E}[A(t)]=\left(\frac{d}{dt}\left\langle \psi(t) \right\rvert\right)A(t)\left\lvert \psi(t) \right\rangle+\left\langle \psi(t) \right\rvert A(t)\left(\frac{d}{dt}\left\lvert \psi(t) \right\rangle\right) d t d E [ A ( t )] = ( d t d ⟨ ψ ( t ) ∣ ) A ( t ) ∣ ψ ( t ) ⟩ + ⟨ ψ ( t ) ∣ A ( t ) ( d t d ∣ ψ ( t ) ⟩ ) = − 1 i ℏ ⟨ ψ ∣ H A ∣ ψ ⟩ + ⟨ ψ ∣ A 1 i ℏ H ∣ ψ ⟩ = -\frac{1}{i\hbar}\left\langle \psi \right\rvert HA\left\lvert \psi \right\rangle+\left\langle \psi \right\rvert A\frac{1}{i\hbar}H\left\lvert \psi \right\rangle = − i ℏ 1 ⟨ ψ ∣ H A ∣ ψ ⟩ + ⟨ ψ ∣ A i ℏ 1 H ∣ ψ ⟩ because commutator ,
= i ℏ ⟨ ψ ∣ [ H , A ] ∣ ψ ⟩ =\frac{i}{\hbar}\left\langle \psi \right\rvert[H,A]\left\lvert \psi \right\rangle = ℏ i ⟨ ψ ∣ [ H , A ] ∣ ψ ⟩ Ehrenfest theorem
d d t E [ A ( t ) ] = i ℏ E [ [ H , A ] ] \boxed{\frac{d}{dt}\mathbb{E}[A(t)]=\frac{i}{\hbar}\mathbb{E}\left[[H,A]\right]} d t d E [ A ( t )] = ℏ i E [ [ H , A ] ] Remarks
If [ H , A ] = 0 [H,A]=0 [ H , A ] = 0 d d t E [ A ( t ) ] = 0 \frac{d}{dt}\mathbb{E}[A(t)]=0 d t d E [ A ( t )] = 0 expected value of A is conserved if A and H are compatible . For example, energy H is always conserved in an Isolated System !
Sometimes convientn to change basis to Heisenberg picture to study observable dynamics
Example of Finding Hamiltonian