TY - JOUR
T1 - Wavefront-guided integral imaging for near-eye 3D display with expanded depth of field
AU - Ma, Haowen
AU - Zhao, Huan
AU - Li, Jingnan
AU - Yao, Junhui
AU - Zhao, Ying
AU - Peng, Buqing
AU - Wang, Yongtian
AU - Liu, Juan
N1 - Publisher Copyright:
© 2026
PY - 2026/12
Y1 - 2026/12
N2 - Conventional near-eye three-dimensional (3D) displays based on integral imaging (InI) are fundamentally limited in depth-of-field (DoF) due to discrete light-field sampling and the lack of continuous axial wavefront control. Existing strategies to extend DoF often sacrifice depth continuity, system simplicity, or real-time capability, leaving an unresolved trade-off between extended depth range and smooth depth perception. Here, we propose a wavefront-guided integral imaging (WGII) framework that integrates holographic wavefront modulation into InI to address the inherent DoF limitation. The proposed approach elevates the image source from a two-dimensional intensity distribution to a three-dimensional elemental image array (3D-EIA) with continuous axial wavefront information, enabling dense and efficient depth encoding via wavefront phase modulation and light-field pixel mapping beyond the conventional InI sampling paradigm, thereby overcoming the inherent trade-off between overall DoF and depth continuity and improving both simultaneously. The unified WGII architecture combines the advantages of holographic and light-field modulation, achieving an extended and quasi-continuous DoF while preserving the intrinsic multiview capability and motion parallax of InI. Optical experiments verify depth-resolved reconstruction over a 531 mm axial range, while numerical angular reconstruction demonstrates dense 65 × 119 viewpoint parallax, along with significantly improved depth continuity and depth range compared to conventional InI. Overall, the proposed WGII framework provides a physically grounded and experimentally feasible paradigm for reconciling extended depth representation with light-field-based near-eye displays, paving the way for next-generation high-quality 3D display applications.
AB - Conventional near-eye three-dimensional (3D) displays based on integral imaging (InI) are fundamentally limited in depth-of-field (DoF) due to discrete light-field sampling and the lack of continuous axial wavefront control. Existing strategies to extend DoF often sacrifice depth continuity, system simplicity, or real-time capability, leaving an unresolved trade-off between extended depth range and smooth depth perception. Here, we propose a wavefront-guided integral imaging (WGII) framework that integrates holographic wavefront modulation into InI to address the inherent DoF limitation. The proposed approach elevates the image source from a two-dimensional intensity distribution to a three-dimensional elemental image array (3D-EIA) with continuous axial wavefront information, enabling dense and efficient depth encoding via wavefront phase modulation and light-field pixel mapping beyond the conventional InI sampling paradigm, thereby overcoming the inherent trade-off between overall DoF and depth continuity and improving both simultaneously. The unified WGII architecture combines the advantages of holographic and light-field modulation, achieving an extended and quasi-continuous DoF while preserving the intrinsic multiview capability and motion parallax of InI. Optical experiments verify depth-resolved reconstruction over a 531 mm axial range, while numerical angular reconstruction demonstrates dense 65 × 119 viewpoint parallax, along with significantly improved depth continuity and depth range compared to conventional InI. Overall, the proposed WGII framework provides a physically grounded and experimentally feasible paradigm for reconciling extended depth representation with light-field-based near-eye displays, paving the way for next-generation high-quality 3D display applications.
KW - Depth expansion
KW - Integral imaging
KW - Phase hologram
UR - https://www.scopus.com/pages/publications/105046803639
U2 - 10.1016/j.optlastec.2026.116139
DO - 10.1016/j.optlastec.2026.116139
M3 - Article
AN - SCOPUS:105046803639
SN - 0030-3992
VL - 204
JO - Optics and Laser Technology
JF - Optics and Laser Technology
M1 - 116139
ER -