High-fidelity full-color self-interference incoherent digital holography via quarter-wave geometric phase optics
基于四分之一波长几何相位光学器件的高保真全色自干涉非相干数字全息术
四分波幾何相光学による高忠実度フルカラー自己干渉非相干デジタルホログラフィ
4분파 기하학적 위상 광학을 통한 고충실도 전색 자가 간섭 비공액 디지털 홀로그래피
Holografía digital incoherente de autointerferencia de alta fidelidad y color completo mediante óptica de fase geométrica de cuarto de onda
Holographie numérique incoherente à interférence auto de haute fidélité et en couleur complète via l'optique de phase géométrique quart d'onde
Высокочастотная полноцветная самоинтерференционная некогерентная цифровая голография с помощью четвертьволновой геометрической фазовой оптики
Jae-Won Lee ¹, Jin-Hyeok Seo ¹, Jung-Yeop Shin ¹, Jing-Wen Bu ¹, Kihong Choi ², Keehoon Hong ², Hak-Rin Kim ¹ ³
¹ School of Electronic and Electrical Engineering, Kyungpook National University, Daegu 41566, Republic of Korea
² Digital Holography Research Section, Electronics and Telecommunications Research Institute, Daejeon 34129, Republic of Korea
³ School of Electronics Engineering, Kyungpook National University, Daegu 41566, Republic of Korea
We present a compact self-interference incoherent digital holography (SIDH) system that incorporates a quarter-waveplate (QWP)-based geometric phase (GP) lens to achieve high-fidelity, full-color holographic imaging under broadband incoherent illumination. Traditional SIDH systems that utilize half-waveplate (HWP)-based GP lenses are hindered by unavoidable triple-wavefront polarization interference, stemming from chromatic dispersion in phase retardation.
This interference introduces color-dependent artifacts in the reconstructed images. In contrast, our QWP-based design inherently suppresses such interference by using the non-diffracted beam as the reference, enabling stable dual-wavefront modulation. This approach produces phase-encoded polarization interference patterns that remain spectrally consistent across the red, green, and blue (RGB) channels. Experimental results demonstrate substantial noise suppression and significantly improved full-color image fidelity, supported by channel-specific noise analysis and structural similarity metrics.
The system also preserves a simplified optical configuration without active polarization control, allowing for compact integration and cost-effective fabrication. These advantages position the proposed QWP-GP SIDH architecture as a promising solution for portable, real-time digital holographic 3D imaging, with scalable potential in applications such as augmented reality, optical diagnostics, and spectral holography.