Department ofPhysics of Complex Systems
Quantum Frontiers

Dr. Ziv Meir

Trapping single molecular ions and steering their quantum states one photon at a time

01 / Research

Research

The group studies individual molecular ions confined in radio-frequency traps and cooled to near their motional ground state, where the rich internal structure of molecules - rotation, vibration, fine and hyperfine levels - becomes a resource rather than an obstacle. By sympathetically cooling a molecular ion alongside a co-trapped atomic ion and reading out its state through that atomic partner, the group prepares, coherently manipulates, and measures the quantum state of a single molecule with high fidelity.

This control opens two complementary directions. The dense ladder of molecular transitions provides exquisitely sensitive probes of fundamental physics - tests of the time variation of fundamental constants, searches for new forces, and high-precision spectroscopy that can underpin molecular clocks - while the many long-lived internal states make molecules attractive carriers of quantum information. The work sits at the intersection of atomic, molecular and optical physics and quantum technology, turning the complexity of molecules into a controllable platform.

Radio-frequency ion trapsQuantum logic spectroscopySympathetic coolingCoherent laser controlSingle-molecule state readoutPrecision laser spectroscopy
Trapped molecular ion controlPreparing and coherently manipulating the internal quantum state of single molecular ions co-trapped with atomic ions.
Quantum logic spectroscopyMapping molecular state information onto a co-trapped atomic ion for non-destructive, high-fidelity readout.
Quantum information in moleculesEncoding and protecting qubits in long-lived rotational and vibrational states of molecular ions.
Precision spectroscopy and clocksMeasuring molecular transitions at extreme precision to test fundamental constants and realize molecular frequency references.
Sympathetic and ground-state coolingBringing molecular ions to the motional ground state to enable coherent control and quantum-logic operations.
02 / People

Group members

Principal investigatorDr. Ziv Meir
Early-career scientistsPostdoctoral researchers
Doctoral researchersPhD students
Master's researchersMSc students

The named roster for each group is generated from the People directory, filtered by this group.

03 / Output

Selected publications

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Design