A spectroscopic Judd-Ofelt investigation of co-doped sodium tellurite glasses is a key issue in lasers. Sm3+ -doped glasses co-doped with various Yb3+ concentrations have been prepared by the melt quenching technique. These glasses have been characterized using XRD, optical absorption and luminescence techniques at room temperature. The amorphous nature of glasses has been confirmed by XRD spectra. The optical absorption spectra exhibited seven absorption peaks corresponding to the transition from ground level H-6(5/2) to the various excited state of Sm3+ ions. The broad absorption band in the range of similar to 870-1040 nm due to the large contribution of the absorption from F-2(7/2) -> F-2(5/2) transition of Yb3+ ion was also observed. Judd-Ofelt theory have been applied to absorption intensities of Sm3+ transitions to determine the phenomenological intensity parameters, Omega lambda (lambda=2,4 and 6). Emission spectra consisted of four emission bands (4)G(5/2) -> H-6(5/2), (6)H(7/)2, H-6(9/2) and H-6(11/2). The J-O parameters have been employed to predict various radiative properties such as transition probability (A(R)), radiative lifetime (tau(f)), branching ratio (beta(R)), effective bandwidth (lambda(eff)), stimulated emission cross-section sigma(lambda(p)), gain bandwidth and optical gain of trivalent samarium ion in (4)G(5/2) excitation level. The maximum values of stimulated emission cross section, gain bandwidth and optical gain were 23.09 x 10(-22), 28.54 x 10(-28) cm(3) and 12.51 x 10(-25), respectively, corresponding to (4)G(5/2) -> H-6(9/2) transition in present glasses. The comparative studies with other Sm3+ doped different glasses showed that present glasses could be a potential candidate for lasers and broadband amplifiers. (C) 2013 Elsevier B.V. All rights reserved.