Abstract:
Executive Summary
This study was performed through a net house experiments at Soil Science Department,
SAU Dhaka. Tomato and okra were grown in the net house during 2021-22 in five
industrially polluted and one non-polluted soils. The soils were collected from Bhaluka
industrial areas where industrial waste water deposited continuously.The experiment was
conducted by using 54 pots (6 Soils: S
0
-Non-polluted soil, S
1
-polluted soil 1, S
-polluted soil
2, S
3
-polluted soil 3, S
4
- polluted soil 4, S
5
2
: polluted soil 5; × 3 fertilizer treatments: T
:
Control T
1
: 100% recommended dose of fertilizer T
: 50% recommended dose of fertilizer
plus 50% nutrient from manure × 3 replications). The tomato and okra yields and yield
parameters were significantly affected by industrially polluted soils and fertilizer treatments.
Among the soils, the highest tomato yield (330.8 g pot
2
-1
) and okra yield (98.55 g pot
) were
found in S
1
and S
5
soils lowest tomato and okra yields were found in S
soils,
respectively. The yield increased in polluted soils may be due to increase of plant nutrient
dposition through industrial waste water but toxic metals accumulation were higher in
polluted soils. The highest tomato yield (322.0 g pot
-1
) was recorded in T
treatment and
lowest in T
treatment. The highest level of tomato (0.585%) and okra (0.343%) fruit dry
matter P concentrations were recorded in S
0
4
T
0
and S
0
T
treatment combinations. The highest
level of tomato (3.963%) and okra (2.130%) fruit dry matter K concentrations were recorded
in S
2
T
1
and S
3
T
2
2
treatment combinations, respectively. The higher levels of Fe and Pb
accumulated in tomato fruits from industrially polluted soils. The highest tomato fruit dry
matter Pb (1.359 mg kg
-1
) and Cd (0.759 mg kg
-1
) concentrations were found in T
treatment
and lower levels were obtained in T
1
and T
treatments. In maximum cases, lower levels of
Pb and Cd concentrations in tomato were recorded in different soils with 50 %
recommended dose of chemical fertilizer plus 50% nutrient from manure (T
2
). Similarly
higher okra dry matter Pb (0.625 mg kg
-1
) was obtained in fertilizer control treatment
compared to fertilizer applied treatments. The higher levels of tomato and okra fruit Cu, Pb
and Cd concentrations were recorded in polluted soils with different fertilizer treatments.
The highest tomato fruit Pb concentration (1.656 mg kg
-1
) was obtained in S
and lowest
(0.501 mg kg
-1
) in S
3
T
treatment combinations. The highest tomato fruit Cd concentration
(1.149 mg kg
-1
2
) was obtained in S
5
T
0
and lowest (0.097 mg kg
-1
4
2
) in S
treatment
combinations. The highest okra Pb concentration (1.182 mg kg
-1
and S
4
2
T
2
1
T
2
) was found in S
and
lowest Pd (0.053 mg kg
-1
)
accumulation was observed in S
3
T
. The highest okra dry matter
Cd concentration (0.523 mg kg
-1
) was found in S
4
T
1
0
treatment combinations and lowest Cd
accumulation was observed in S
2
T
. The higher levels of toxic metals accumulated in
fertilizer control treatment and lower accumulation was found in contaminated soil with 50%
inorganic fertilizer plus 50% nutrient from manure.
0
0
-1
0
1
T
0
0