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Physics
Universal Gravitation
F
=
G
m
1
m
2
r
2
F = G\frac{m_1 m_2}{r^2}
F
=
G
r
2
m
1
m
2
Mass–Energy Equivalence
E
=
m
c
2
E = m c^2
E
=
m
c
2
Schrödinger Equation
i
ℏ
∂
Ψ
∂
t
=
H
^
Ψ
i\hbar \frac{\partial \Psi}{\partial t} = \hat{H} \Psi
i
ℏ
∂
t
∂
Ψ
=
H
^
Ψ
Classical mechanics
Universal Gravitation
F
=
G
m
1
m
2
r
2
F = G\frac{m_1 m_2}{r^2}
F
=
G
r
2
m
1
m
2
Gravity
Universal Gravitation
F
=
G
m
1
m
2
r
2
F = G\frac{m_1 m_2}{r^2}
F
=
G
r
2
m
1
m
2
Inverse-square law
Universal Gravitation
F
=
G
m
1
m
2
r
2
F = G\frac{m_1 m_2}{r^2}
F
=
G
r
2
m
1
m
2
Special relativity
Mass–Energy Equivalence
E
=
m
c
2
E = m c^2
E
=
m
c
2
Mass–energy equivalence
Mass–Energy Equivalence
E
=
m
c
2
E = m c^2
E
=
m
c
2
Quantum mechanics
Schrödinger Equation
i
ℏ
∂
Ψ
∂
t
=
H
^
Ψ
i\hbar \frac{\partial \Psi}{\partial t} = \hat{H} \Psi
i
ℏ
∂
t
∂
Ψ
=
H
^
Ψ
Wave mechanics
Schrödinger Equation
i
ℏ
∂
Ψ
∂
t
=
H
^
Ψ
i\hbar \frac{\partial \Psi}{\partial t} = \hat{H} \Psi
i
ℏ
∂
t
∂
Ψ
=
H
^
Ψ