ساری بات سمجھ جاتا ہے
فاع فاعلن پر اٹکا ہے
فاع فعولن فاع فعولن
سارا کھیل فعولن کا ہے
میرے عروض پہ شک کرتا ہے
’’پہلی بارش‘‘ کو دیکھا ہے!
میرا عروض پرکھنے والے
تجھ کو عروض نہیں آتا ہے
پہلے ناصرؔ کو پڑھ کر آ
بات عروض کی گر کرتا ہے
فعلن کی تو سو صورت ہے
تو بس آٹھ لیے پھرتا ہے
’’پہلی بارش ‘‘میں ناصر نے
ہندی بحر کو ہی برتا ہے
میرے شہر کے لوگوں نے تو
ناصرؔ کو بے وزن کہا ہے
تجھ کو وہی سمجھے گا صادقؔ
جس نے ناصرؔ کو دیکھا ہے
Hydro politics is the modern term for water issues. Every country wishes to protect its sweet water resources, especially those that have difficulties with rivers that run through more than one country. Water is required for the survival of over 180 species. This study is center on the importance of water to all living things, including humans, as well as to countries and their economies. The conflicts and treaties are also covered in the area of study on hydro-politics on the river Jhelum between India and Pakistan. Both countries have fought wars over water more than once, and if the water distribution issue can handle peacefully then their relationship may improve. The Jhelum River began in the disputed area of Jammu and Kashmir and flows through Pakistan and meets the Indus River. The distribution of Jhelum water was settled by the Indus Water Treaty in 1960, but India's repeated breaches made it a problem between the two neighboring states and one of the reasons for conflict between them. The research's main goal is to not only examine the causes of conflict but also to predict how it will be resolved in the future.
Shape-memory polyurethanes (SMPUs) blends and nanocomposites with conducting polymers (CPs) have fascinated noteworthy considerations for both academic and industrial research due to their important and captivating applications. In the present study, four CPs namely polypyrrole (PPy), polyaniline (PAni), polythiophene (PTh) and poly(aniline-co-thiophene) (PAni-co-PTh) were prepared via chemical oxidative polymerization and used to synthesize the blends and nanocomposites with shape-memory polyurethane (SMPU). Polyurethane was prepared by addition polymerization using polyethylene oxide (PEO) and poly(propylene glycol)-block-poly(ethylene glycol)-block-poly(propylene glycol) (PPG-b-PEG-b-PPG) as soft segment, while 2,4-toluene diisocyanate (2,4-TDI) as hard segment. Four series of PU/CPs blend and composite films for each conducting polymer with the varying weight % of CP (0.1, 0.3, 0.5 and 1.0%) were fabricated. The structural characterization and morphology of the prepared samples was inspected by Fourier transform infrared (FT-IR) and scanning electron microscopy (SEM), respectively. Mechanical, thermal, electrical and shape memory properties of the SMPU/CPs blends and nanocomposites were also investigated. Improved mechanical performances such as tensile strength and Young’s modulus of PU/CPs blends were observed with higher content of CPs, while nanocomposites showed decreasing trend with CPs owing to globular morphology, outcome of layered adsorption of CPs over multi-walled carbon nanotube (MWCNTs). Thermal stability was found to increase systematically with increasing CPs content in blend and composite films. Differential scanning calorimetric (DSC) scans indicated an increase in glass transition, melting and crystallization temperatures for blend samples with CPs loading (0.1-1.0 wt. %). While for nanocomposites, better DSC parameters were observed with 0.1% CPs content. All prepared samples followed the same trend with different CPs except PTh-based blends and composites which was due to the lack of interaction between PU segments and PTh chains. X-ray diffraction results also complimented the DSC studies. Moreover, the electrical conductivity of PU/CPs blends and nanocomposites was also found to be a function of CPs loadings. However, nanocomposites possessed higher conductivities values compared to their respective blends ascribed to the presence of thermally more stable and electrically conductive modified carbon nanotubes in composites. Remarkable recoverability of thermally triggered shape memory (SM) behavior was achieved for all prepared PU/CPs blends and nanocomposites.