2022•NanophotonicsOpen access

Four‐ and five‐photon upconversion lasing from rare earth elements under continuous‐wave pump and room temperature

Bo Jiang, Yuchan Hu, Linhao Ren, Han Zhou, Lei Shi, Xinliang Zhang

Open full text 6 citations

Abstract

Abstract Benefited from abundant long‐lived intermediate energy levels of rear earth elements, large anti‐Stokes lasing can be realized by multi‐photon upconversion processes, which does not demand rigorous phase match and ultrahigh pump power. Here, we have fabricated an Er‐doped silica microsphere with an ultrahigh intrinsic quality factor of 1.2 × 10 8 . By continuous‐wave (CW) excitation at 1535 nm, four‐ and five‐photon upconversion lasers are achieved simultaneously under room temperature, in which the lasing thresholds are estimated as 176 and 600 μW, respectively. Beside the ultralow thresholds, the microlaser also exhibits good stability of lasing intensity for practical applications. The four‐ and five‐photon upconversion lasing from rare earth elements have not been separately demonstrated under CW pump and room temperature until this work. This demonstration provides a prospect to realizing high‐performance short‐wavelength laser by pumping low‐energy photons.

Open-access reader

About this research paper

What this paper is about

Abstract Benefited from abundant long‐lived intermediate energy levels of rear earth elements, large anti‐Stokes lasing can be realized by multi‐photon upconversion processes, which does not demand rigorous phase match and ultrahigh pump power. Here, we have fabricated an Er‐doped silica microsphere with an ultrahigh intrinsic quality factor of 1.2 × 10 8 . By continuous‐wave (CW) excitation at 1535 nm, four‐ and five‐photon upconversion lasers are achieved simultaneously under room temperature, in which the lasing thresholds are estimated as 176 and 600 μW, respectively. Beside the ultralow thresholds, the microlaser also exhibits good stability of lasing intensity for practical applications. The four‐ and five‐photon upconversion lasing from rare earth elements have not been separately demonstrated under CW pump and room temperature until this work. This demonstration provides a prospect to realizing high‐performance short‐wavelength laser by pumping low‐energy photons.

Why it matters

OpenAlex reports 6 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Abstract Benefited from abundant long‐lived intermediate energy levels of rear earth elements, large anti‐Stokes lasing can be realized by multi‐photon upconversion processes, which does not demand rigorous phase match and ultrahigh pump power. Here, we have fabricated an Er‐doped silica microsphere with an ultrahigh intrinsic quality factor of 1.2 × 10 8 . By continuous‐wave (CW) excitation at 1535 nm, four‐ and five‐photon upconversion lasers are achieved simultaneously under room temperature, in which the lasing thresholds are estimated as 176 and 600 μW, respectively. Beside the ultralow thresholds, the microlaser also exhibits good stability of lasing intensity for practical applications. The four‐ and five‐photon upconversion lasing from rare earth elements have not been separately demonstrated under CW pump and room temperature until this work. This demonstration provides a prospect to realizing high‐performance short‐wavelength laser by pumping low‐energy photons.

Key concepts: Photon upconversion, Lasing threshold, Nanomaterials, Materials science, Photon, Rare earth, Continuous wave, Optoelectronics

Related papers

Back to paper searchBrowse research topicsOriginal source
Four‐ and five‐photon upconversion lasing from rare earth elements under continuous‐wave pump and room temperature — Research Paper | ScholarLens