The phase of matter waves depends on proper time and is therefore susceptible to special-relativistic (kinematic) and gravitational (redshift) time dilation. Hence, it is conceivable that atom interferometers measure general-relativistic time-dilation effects. In contrast to this intuition, we show that (i) closed light-pulse interferometers without clock transitions during the pulse sequence are not sensitive to gravitational time dilation in a linear potential. (ii) They can constitute a quantum version of the special-relativistic twin paradox. (iii) Our proposed experimental geometry for a quantum-clock interferometer isolates this effect
Atomic interference experiments can probe the gravitational redshift via the internal energy splitti...
Both quantum mechanics and general relativity are based on principles that defy our daily intuitions...
Abstract The relativistic time dilation is reviewed in a cosmological context. We show that a clock ...
The phase of matter waves depends on proper time and is therefore susceptible to special-relativisti...
The phase of matter waves depends on proper time and is therefore susceptible to special-relativisti...
The phase of matter waves depends on proper time and is therefore susceptible to special-relativisti...
The theory of relativity associates a proper time with each moving object via its world line. In qua...
Quantum mechanics and general relativity have been each successfully tested in numerous experiments....
In Einstein's theory of general relativity, gravity is a manifestation of spacetime curvature. As pr...
Recently, a proper time observable for a quantum clock is introduced and it is found that the proper...
We derive the predicted time dilation of delocalized atomic clocks in an optical lattice setup in th...
Quantum mechanics and general relativity have been extensively and independently confirmed in many e...
The creation of delocalized coherent superpositions of quantum systems experiencing di erent relativ...
Current attempts to probe general relativistic effects in quantum mechanics focus on precision measu...
Both quantum mechanics and general relativity are based on principles that defy our daily intuitions...
Atomic interference experiments can probe the gravitational redshift via the internal energy splitti...
Both quantum mechanics and general relativity are based on principles that defy our daily intuitions...
Abstract The relativistic time dilation is reviewed in a cosmological context. We show that a clock ...
The phase of matter waves depends on proper time and is therefore susceptible to special-relativisti...
The phase of matter waves depends on proper time and is therefore susceptible to special-relativisti...
The phase of matter waves depends on proper time and is therefore susceptible to special-relativisti...
The theory of relativity associates a proper time with each moving object via its world line. In qua...
Quantum mechanics and general relativity have been each successfully tested in numerous experiments....
In Einstein's theory of general relativity, gravity is a manifestation of spacetime curvature. As pr...
Recently, a proper time observable for a quantum clock is introduced and it is found that the proper...
We derive the predicted time dilation of delocalized atomic clocks in an optical lattice setup in th...
Quantum mechanics and general relativity have been extensively and independently confirmed in many e...
The creation of delocalized coherent superpositions of quantum systems experiencing di erent relativ...
Current attempts to probe general relativistic effects in quantum mechanics focus on precision measu...
Both quantum mechanics and general relativity are based on principles that defy our daily intuitions...
Atomic interference experiments can probe the gravitational redshift via the internal energy splitti...
Both quantum mechanics and general relativity are based on principles that defy our daily intuitions...
Abstract The relativistic time dilation is reviewed in a cosmological context. We show that a clock ...